Other Sites:
Robert J. Robbins is a biologist, an educator, a science administrator, a publisher, an information technologist, and an IT leader and manager who specializes in advancing biomedical knowledge and supporting education through the application of information technology. More About: RJR | OUR TEAM | OUR SERVICES | THIS WEBSITE
RJR: Recommended Bibliography 29 Aug 2026 at 01:46 Created:
Alzheimer Disease — Current Literature
Alzheimer's disease is an irreversible, progressive brain disorder that slowly destroys memory and thinking skills, and eventually the ability to carry out the simplest tasks. In most people with Alzheimer's, symptoms first appear in their mid-60s. Alzheimer's is the most common cause of dementia among older adults. Dementia is the loss of cognitive functioning — thinking, remembering, and reasoning — and behavioral abilities to such an extent that it interferes with a person's daily life and activities. Dementia ranges in severity from the mildest stage, when it is just beginning to affect a person's functioning, to the most severe stage, when the person must depend completely on others for basic activities of daily living. Scientists don't yet fully understand what causes Alzheimer's disease in most people. There is a genetic component to some cases of early-onset Alzheimer's disease. Late-onset Alzheimer's arises from a complex series of brain changes that occur over decades. The causes probably include a combination of genetic, environmental, and lifestyle factors. The importance of any one of these factors in increasing or decreasing the risk of developing Alzheimer's may differ from person to person. This bibliography runs a generic query on "Alzheimer" and then restricts the results to papers published in or after 2017.
Created with PubMed® Query: 2024:2026[dp] AND ( alzheimer*[TIAB] ) NOT pmcbook NOT ispreviousversion
Citations The Papers (from PubMed®)
RevDate: 2026-08-28
CmpDate: 2026-08-27
Incident Cognitive Impairment in Nonobese Versus Obese Adults Aged 50 Years or Older With Metabolic Dysfunction-Associated Steatotic Liver Disease: A Propensity Score-Matched Cohort Study.
International journal of hepatology, 2026:7550224.
AIMS: Nonobese metabolic dysfunction-associated steatotic liver disease (MASLD) may carry disproportionate neurodegenerative risk, but whether body habitus modifies cognitive risk within MASLD remains unresolved. We compared cognitive impairment between nonobese and obese adults aged 50 years or older with MASLD.
METHODS AND RESULTS: Retrospective cohort study with 1:1 propensity score matching in the TriNetX Research Network, a federated electronic health record network. Adults with a first MASLD diagnosis (2016-2022) meeting a metabolic-risk criterion were classified by index body mass index as nonobese (18.50-29.99 kg/m[2]) or obese (≥ 30.00 kg/m[2]); underweight patients were excluded. The primary outcome was a composite of incident cognitive impairment (mild cognitive impairment [MCI] through dementia) over Days 366-1825. Hazard ratios (HRs) were estimated with Kaplan-Meier and log-rank methods; a negative control (acute appendicitis) and an E-value assessed bias. Matching yielded 36,021 patients per group (mean age 64.3 years; 57% women; all standardized mean differences < 0.10). Nonobese MASLD was associated with a higher risk of the composite cognitive outcome (2.9% vs 2.6%; HR 1.126, 95% confidence interval [CI] 1.031-1.230; p = 0.008; E-value 1.50), driven by MCI (HR 1.221, 95% CI 1.078-1.384; p = 0.002). Estimates were null for incident Alzheimer disease, all-cause dementia, vascular dementia, all-cause mortality, and the negative control.
CONCLUSION: Among adults aged 50 years or older with MASLD, nonobese status was associated with a modestly higher risk of incident cognitive impairment. Prospective validation in imaging- or biomarker-confirmed MASLD cohorts is warranted.
Additional Links: PMID-42657128
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42657128,
year = {2026},
author = {Alnounou, A and Alabbas, M and Machchhar, R and Ibrahim, EA and Alali, M and Alhusen, A and Jafri, SM and Njei, B},
title = {Incident Cognitive Impairment in Nonobese Versus Obese Adults Aged 50 Years or Older With Metabolic Dysfunction-Associated Steatotic Liver Disease: A Propensity Score-Matched Cohort Study.},
journal = {International journal of hepatology},
volume = {2026},
number = {},
pages = {7550224},
pmid = {42657128},
issn = {2090-3448},
abstract = {AIMS: Nonobese metabolic dysfunction-associated steatotic liver disease (MASLD) may carry disproportionate neurodegenerative risk, but whether body habitus modifies cognitive risk within MASLD remains unresolved. We compared cognitive impairment between nonobese and obese adults aged 50 years or older with MASLD.
METHODS AND RESULTS: Retrospective cohort study with 1:1 propensity score matching in the TriNetX Research Network, a federated electronic health record network. Adults with a first MASLD diagnosis (2016-2022) meeting a metabolic-risk criterion were classified by index body mass index as nonobese (18.50-29.99 kg/m[2]) or obese (≥ 30.00 kg/m[2]); underweight patients were excluded. The primary outcome was a composite of incident cognitive impairment (mild cognitive impairment [MCI] through dementia) over Days 366-1825. Hazard ratios (HRs) were estimated with Kaplan-Meier and log-rank methods; a negative control (acute appendicitis) and an E-value assessed bias. Matching yielded 36,021 patients per group (mean age 64.3 years; 57% women; all standardized mean differences < 0.10). Nonobese MASLD was associated with a higher risk of the composite cognitive outcome (2.9% vs 2.6%; HR 1.126, 95% confidence interval [CI] 1.031-1.230; p = 0.008; E-value 1.50), driven by MCI (HR 1.221, 95% CI 1.078-1.384; p = 0.002). Estimates were null for incident Alzheimer disease, all-cause dementia, vascular dementia, all-cause mortality, and the negative control.
CONCLUSION: Among adults aged 50 years or older with MASLD, nonobese status was associated with a modestly higher risk of incident cognitive impairment. Prospective validation in imaging- or biomarker-confirmed MASLD cohorts is warranted.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-27
Cognitive training effects in mild cognitive impairment with and without amyloid pathology.
Dementia & neuropsychologia, 20:e20250398.
UNLABELLED: Imagery-based cognitive training (CT) is a promising strategy for individuals with amnestic mild cognitive impairment (aMCI). However, there is a lack of studies investigating its differential impact in aMCI with and without amyloid pathology.
OBJECTIVE: To investigate the effects of CT based on mental imagery on episodic memory in individuals with amyloid-positive aMCI (Aβ+), amyloid-negative aMCI (Aβ-), and healthy controls (HC).
METHODS: Fifty-five participants were included: Aβ+aMCI (n=19), Aβ-aMCI (n=20), and HC (n=16), aged 51-89 years, with more than 6 years of education. Amyloid status was confirmed by 11C-PiB PET. All participants completed pre- and post-training neuropsychological assessments and attended six individual online CT sessions. Performance was assessed using the logical memory test (LM), Rey Auditory Verbal Learning Test (RAVLT), and generalization tasks (GT I-II).
RESULTS: Data were analyzed using the Shapiro-Wilk, Levene, Wilcoxon, ANOVA, Kruskal-Wallis, and Bonferroni tests. Significant improvements in immediate episodic memory (LM I, RAVLT A1-A5) were observed in the Aβ+ and Aβ-groups, particularly in the Aβ-aMCI group. Delayed recall (LM II, RAVLT A7) increased, although without statistical significance. All groups showed gains in generalization tasks, supporting the benefit of CT.
CONCLUSION: Unimodal CT based on mental imagery promoted gains in immediate episodic memory across all groups. Although delayed recall gains were not statistically significant, the strategy was internalized and generalized. Similar responsiveness in Aβ+ and Aβ-groups suggest preserved compensatory mechanisms despite amyloid pathology. These findings suggest more robust effects at the level of encoding than consolidation, which may vary according to task characteristics and underlying neural integrity.
Additional Links: PMID-42657170
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42657170,
year = {2026},
author = {Bossa, NA and Busatto, G and Nitrini, R and Brucki, SMD and Miotto, EC},
title = {Cognitive training effects in mild cognitive impairment with and without amyloid pathology.},
journal = {Dementia & neuropsychologia},
volume = {20},
number = {},
pages = {e20250398},
pmid = {42657170},
issn = {1980-5764},
abstract = {UNLABELLED: Imagery-based cognitive training (CT) is a promising strategy for individuals with amnestic mild cognitive impairment (aMCI). However, there is a lack of studies investigating its differential impact in aMCI with and without amyloid pathology.
OBJECTIVE: To investigate the effects of CT based on mental imagery on episodic memory in individuals with amyloid-positive aMCI (Aβ+), amyloid-negative aMCI (Aβ-), and healthy controls (HC).
METHODS: Fifty-five participants were included: Aβ+aMCI (n=19), Aβ-aMCI (n=20), and HC (n=16), aged 51-89 years, with more than 6 years of education. Amyloid status was confirmed by 11C-PiB PET. All participants completed pre- and post-training neuropsychological assessments and attended six individual online CT sessions. Performance was assessed using the logical memory test (LM), Rey Auditory Verbal Learning Test (RAVLT), and generalization tasks (GT I-II).
RESULTS: Data were analyzed using the Shapiro-Wilk, Levene, Wilcoxon, ANOVA, Kruskal-Wallis, and Bonferroni tests. Significant improvements in immediate episodic memory (LM I, RAVLT A1-A5) were observed in the Aβ+ and Aβ-groups, particularly in the Aβ-aMCI group. Delayed recall (LM II, RAVLT A7) increased, although without statistical significance. All groups showed gains in generalization tasks, supporting the benefit of CT.
CONCLUSION: Unimodal CT based on mental imagery promoted gains in immediate episodic memory across all groups. Although delayed recall gains were not statistically significant, the strategy was internalized and generalized. Similar responsiveness in Aβ+ and Aβ-groups suggest preserved compensatory mechanisms despite amyloid pathology. These findings suggest more robust effects at the level of encoding than consolidation, which may vary according to task characteristics and underlying neural integrity.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-27
Structural MRI signature predicts tau staging in Alzheimer's disease.
Alzheimer's & dementia (Amsterdam, Netherlands), 18(3):e70451.
INTRODUCTION: Tau positron emission tomography (PET) probes Alzheimer's disease (AD) severity via regional tau spread but is not widely available. We tested whether multiregion structural magnetic resonance imaging (MRI) could approximate individual tau burden.
METHODS: We studied 378 Alzheimer's Disease Neuroimaging Initiative (ADNI) participants with mild cognitive impairment (MCI)-AD or AD dementia with paired T1-MRI and [18F]flortaucipir tau-PET (≤6 months apart). Regional cortical thickness and volume were extracted with FreeSurfer. Principal component analysis and multivariable linear regression yielded MRI signatures of tau-PET standardized uptake value ratio (SUVR) in Braak composite regions (I, III-IV, V-VI), a meta-temporal region of interest (ROI), and a global neocortical meta-ROI. Performance and high/low tau classification were evaluated by leave-one-out cross-validation against published cut-offs.
RESULTS: MRI signatures were significantly associated with tau-PET burden across all regions (p < 0.001). High-versus-low tau discrimination varied: AUC ≈ 0.70 in Braak I, ≈0.89 in Braak V-VI, and ≈0.90 globally.
DISCUSSION: Here we provide proof-of-concept evidence that multiregion T1-MRI patterns can inform on tau-PET burden in AD and may support approximate tau staging when tau-PET is unavailable, especially in subjects with more advanced tau burden.
Additional Links: PMID-42657236
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42657236,
year = {2026},
author = {Pulze, M and Garbarino, S and Lorenzini, L and Cirone, A and Ali, S and Gualco, L and Massa, F and Arnaldi, D and Orso, B and Losa, M and Kreshpa, W and Caneva, S and Parodi, M and Sofia, L and Raffa, S and Sambuceti, G and Caulo, M and Pravatà, E and Levrero, F and Bozzali, M and Morbelli, S and Piana, M and Uccelli, A and Roccatagliata, L and Chincarini, A and Pardini, M and , },
title = {Structural MRI signature predicts tau staging in Alzheimer's disease.},
journal = {Alzheimer's & dementia (Amsterdam, Netherlands)},
volume = {18},
number = {3},
pages = {e70451},
pmid = {42657236},
issn = {2352-8729},
abstract = {INTRODUCTION: Tau positron emission tomography (PET) probes Alzheimer's disease (AD) severity via regional tau spread but is not widely available. We tested whether multiregion structural magnetic resonance imaging (MRI) could approximate individual tau burden.
METHODS: We studied 378 Alzheimer's Disease Neuroimaging Initiative (ADNI) participants with mild cognitive impairment (MCI)-AD or AD dementia with paired T1-MRI and [18F]flortaucipir tau-PET (≤6 months apart). Regional cortical thickness and volume were extracted with FreeSurfer. Principal component analysis and multivariable linear regression yielded MRI signatures of tau-PET standardized uptake value ratio (SUVR) in Braak composite regions (I, III-IV, V-VI), a meta-temporal region of interest (ROI), and a global neocortical meta-ROI. Performance and high/low tau classification were evaluated by leave-one-out cross-validation against published cut-offs.
RESULTS: MRI signatures were significantly associated with tau-PET burden across all regions (p < 0.001). High-versus-low tau discrimination varied: AUC ≈ 0.70 in Braak I, ≈0.89 in Braak V-VI, and ≈0.90 globally.
DISCUSSION: Here we provide proof-of-concept evidence that multiregion T1-MRI patterns can inform on tau-PET burden in AD and may support approximate tau staging when tau-PET is unavailable, especially in subjects with more advanced tau burden.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-27
Repetitive Transcranial Magnetic Stimulation in Alzheimer's Disease Cognitive Impairment: A Narrative Review of Clinical Trials.
Health science reports, 9(9):e73104.
BACKGROUND AND AIMS: Alzheimer's disease (AD), primarily characterized by cognitive impairment, places an immense burden on patients and caregivers. Non-invasive neuromodulation with repetitive transcranial magnetic stimulation has been proposed to improve cognition in mild to moderate AD. This narrative review aimed to summarize clinical trial evidence on the effects, safety, and tolerability of rTMS for AD-related cognitive impairment and to identify research gaps.
METHODS: A narrative review of clinical trials was performed. PubMed/MEDLINE, Embase, Cochrane Google scholar, and Scopus were searched from inception to January 25, 2025, using terms for "repetitive transcranial magnetic stimulation", "Alzheimer's disease", "cognitive impairment", "clinical trials", and "randomized controlled trial". Clinical trials of active rTMS versus sham or treatment-as-usual in adults with mild to moderate AD that reported validated cognitive outcomes were included. Data on rTMS protocols, cognitive measures, adverse effects, and follow-up were extracted and synthesized narratively without statistical pooling.
RESULTS: 14 trials were included. Across most studies, rTMS delivered at 5-20 Hz for 4 to 12 weeks, at least 5 days per week, was associated with improved cognitive function. Improvements were reported on tools such as the MMSE, CDR-SB, SIB, and ADAS-Cog, with statistically significant differences versus sham in most trials [p < 0.05], and some evidence of sustained benefit at follow-up. rTMS was generally safe and tolerable. Reported adverse effects were mild to moderate and included transient headache, scalp or skin discomfort, pain, and fatigue. Preliminary evidence also suggested potential neuropsychiatric benefits. However, substantial heterogeneity in duration, frequency, treatment plan, targets, and outcome measures limited definitive conclusions.
CONCLUSION: rTMS appears safe in the short term and may be linked to short-term cognitive and neuropsychiatric gains in mild to moderate AD. However, marked protocol heterogeneity, small sample sizes, short follow-up, and risk of bias limit certainty and prevent identification of optimal parameters. rTMS is not ready for routine AD care. Larger, sham-controlled trials with standardized protocols and biomarker or long-term outcomes are needed.
Additional Links: PMID-42657250
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42657250,
year = {2026},
author = {Napoleon, T and Akinrinde, D and Femi-Lawal, VO and Adebajo, GO and Yokolo, H and Okei, FU and Alabi, G and Ifeoluwa, OI and Lawal, SO and Abati, SO and Duru, CN and Oluwatosin, O and Sanusi, IO and Solomon, AO and Clement, A and Bello, T and Egwu, EO and Chukwuemeka, EK},
title = {Repetitive Transcranial Magnetic Stimulation in Alzheimer's Disease Cognitive Impairment: A Narrative Review of Clinical Trials.},
journal = {Health science reports},
volume = {9},
number = {9},
pages = {e73104},
pmid = {42657250},
issn = {2398-8835},
abstract = {BACKGROUND AND AIMS: Alzheimer's disease (AD), primarily characterized by cognitive impairment, places an immense burden on patients and caregivers. Non-invasive neuromodulation with repetitive transcranial magnetic stimulation has been proposed to improve cognition in mild to moderate AD. This narrative review aimed to summarize clinical trial evidence on the effects, safety, and tolerability of rTMS for AD-related cognitive impairment and to identify research gaps.
METHODS: A narrative review of clinical trials was performed. PubMed/MEDLINE, Embase, Cochrane Google scholar, and Scopus were searched from inception to January 25, 2025, using terms for "repetitive transcranial magnetic stimulation", "Alzheimer's disease", "cognitive impairment", "clinical trials", and "randomized controlled trial". Clinical trials of active rTMS versus sham or treatment-as-usual in adults with mild to moderate AD that reported validated cognitive outcomes were included. Data on rTMS protocols, cognitive measures, adverse effects, and follow-up were extracted and synthesized narratively without statistical pooling.
RESULTS: 14 trials were included. Across most studies, rTMS delivered at 5-20 Hz for 4 to 12 weeks, at least 5 days per week, was associated with improved cognitive function. Improvements were reported on tools such as the MMSE, CDR-SB, SIB, and ADAS-Cog, with statistically significant differences versus sham in most trials [p < 0.05], and some evidence of sustained benefit at follow-up. rTMS was generally safe and tolerable. Reported adverse effects were mild to moderate and included transient headache, scalp or skin discomfort, pain, and fatigue. Preliminary evidence also suggested potential neuropsychiatric benefits. However, substantial heterogeneity in duration, frequency, treatment plan, targets, and outcome measures limited definitive conclusions.
CONCLUSION: rTMS appears safe in the short term and may be linked to short-term cognitive and neuropsychiatric gains in mild to moderate AD. However, marked protocol heterogeneity, small sample sizes, short follow-up, and risk of bias limit certainty and prevent identification of optimal parameters. rTMS is not ready for routine AD care. Larger, sham-controlled trials with standardized protocols and biomarker or long-term outcomes are needed.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-27
Associations between essential trace elements and Alzheimer's disease and related dementias.
Alzheimer's & dementia (Amsterdam, Netherlands), 18(3):e70467.
INTRODUCTION: Dysregulation of essential trace elements has been implicated in Alzheimer's disease (AD) pathogenesis, yet comprehensive epidemiologic evidence remains limited. We investigated associations of seven plasma essential trace elements, including manganese, iron, cobalt, copper, zinc, selenium, and molybdenum, with AD and all-cause dementia risk.
METHODS: We analyzed 1,737 participants from the National Alzheimer's Coordinating Center. Cross-sectional analyses assessed prevalent disease; longitudinal analyses evaluated incident cases among 1,101 initially dementia-free participants (median follow-up: 2.05 years). Multivariable logistic regression, Cox proportional hazards models, and quantile-based g-computation evaluated individual and mixture effects.
RESULTS: A simultaneous one-quartile increase in the seven-element mixture was associated with lower prevalent AD (odds ratio [OR] = 0.69; 95% confidence interval [CI]: 0.52-0.91). Longitudinally, higher plasma iron was associated with lower incident AD (hazard ratio [HR] = 0.41; 95% CI: 0.19-0.92, Q4 vs. Q1), while selenium predicted higher incident AD risk (HR = 2.42; 95% CI: 1.11-5.27, Q4 vs. Q1).
DISCUSSION: Lower plasma iron and higher plasma selenium were each associated with greater dementia risk, identifying iron and selenium as potentially modifiable factors for dementia prevention, especially in selenium-replete populations.
Additional Links: PMID-42657258
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42657258,
year = {2026},
author = {Wang, X and Albin, RL and Giordani, B and Mukherjee, B and Paulson, HL and Bakulski, KM},
title = {Associations between essential trace elements and Alzheimer's disease and related dementias.},
journal = {Alzheimer's & dementia (Amsterdam, Netherlands)},
volume = {18},
number = {3},
pages = {e70467},
pmid = {42657258},
issn = {2352-8729},
abstract = {INTRODUCTION: Dysregulation of essential trace elements has been implicated in Alzheimer's disease (AD) pathogenesis, yet comprehensive epidemiologic evidence remains limited. We investigated associations of seven plasma essential trace elements, including manganese, iron, cobalt, copper, zinc, selenium, and molybdenum, with AD and all-cause dementia risk.
METHODS: We analyzed 1,737 participants from the National Alzheimer's Coordinating Center. Cross-sectional analyses assessed prevalent disease; longitudinal analyses evaluated incident cases among 1,101 initially dementia-free participants (median follow-up: 2.05 years). Multivariable logistic regression, Cox proportional hazards models, and quantile-based g-computation evaluated individual and mixture effects.
RESULTS: A simultaneous one-quartile increase in the seven-element mixture was associated with lower prevalent AD (odds ratio [OR] = 0.69; 95% confidence interval [CI]: 0.52-0.91). Longitudinally, higher plasma iron was associated with lower incident AD (hazard ratio [HR] = 0.41; 95% CI: 0.19-0.92, Q4 vs. Q1), while selenium predicted higher incident AD risk (HR = 2.42; 95% CI: 1.11-5.27, Q4 vs. Q1).
DISCUSSION: Lower plasma iron and higher plasma selenium were each associated with greater dementia risk, identifying iron and selenium as potentially modifiable factors for dementia prevention, especially in selenium-replete populations.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-27
MMSE-CDR-SB residual as an exploratory indicator of deviation from an Alzheimer's disease-typical cognitive-functional pattern.
Alzheimer's & dementia (Amsterdam, Netherlands), 18(3):e70460.
INTRODUCTION: In clinical practice, patients with Alzheimer's disease (AD) often present with cognitive and functional profiles that diverge from what is expected. We tested whether the Mini-Mental State Examination Clinical Dementia Rating Sum of Boxes (MMSE-CDR-SB) residual, defined as observed minus expected CDR-SB from a published MMSE-CDR-SB reference equation, reflects clinically meaningful deviation from the expected cognitive-functional relationship.
METHODS: Using National Alzheimer's Coordinating Center data, we analyzed an autopsy cohort (n = 1981) and a separate clinical diagnosis cohort (n = 3184). Negative residual values indicated less functional impairment than expected for a given cognitive score, and positive values indicated greater functional impairment than expected. Associations were examined using multivariable logistic regression adjusted for MMSE score range, age, sex, and education.
RESULTS: Lower residual values were associated with lower odds of amyloid and AD-type tau pathology. Higher residual values showed a directional association with transactive response DNA binding protein 43 kDa; vascular burden was also associated with the residual index but across a broader range. In the clinical cohort, higher residual values were enriched in progressive supranuclear palsy and frontotemporal lobar degeneration (other), whereas AD cases clustered near the reference pattern.
DISCUSSION: The MMSE-CDR-SB residual may help flag less AD-typical presentations for further etiologic evaluation, but cannot be interpreted as a pathology-specific marker due to substantial overlap across diagnostic groups.
Additional Links: PMID-42657316
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42657316,
year = {2026},
author = {Mounié, A and Sato, K and Nakashima, S and Kurihara, M and Ihara, R and Niimi, Y and Iwata, A and Iwatsubo, T},
title = {MMSE-CDR-SB residual as an exploratory indicator of deviation from an Alzheimer's disease-typical cognitive-functional pattern.},
journal = {Alzheimer's & dementia (Amsterdam, Netherlands)},
volume = {18},
number = {3},
pages = {e70460},
pmid = {42657316},
issn = {2352-8729},
abstract = {INTRODUCTION: In clinical practice, patients with Alzheimer's disease (AD) often present with cognitive and functional profiles that diverge from what is expected. We tested whether the Mini-Mental State Examination Clinical Dementia Rating Sum of Boxes (MMSE-CDR-SB) residual, defined as observed minus expected CDR-SB from a published MMSE-CDR-SB reference equation, reflects clinically meaningful deviation from the expected cognitive-functional relationship.
METHODS: Using National Alzheimer's Coordinating Center data, we analyzed an autopsy cohort (n = 1981) and a separate clinical diagnosis cohort (n = 3184). Negative residual values indicated less functional impairment than expected for a given cognitive score, and positive values indicated greater functional impairment than expected. Associations were examined using multivariable logistic regression adjusted for MMSE score range, age, sex, and education.
RESULTS: Lower residual values were associated with lower odds of amyloid and AD-type tau pathology. Higher residual values showed a directional association with transactive response DNA binding protein 43 kDa; vascular burden was also associated with the residual index but across a broader range. In the clinical cohort, higher residual values were enriched in progressive supranuclear palsy and frontotemporal lobar degeneration (other), whereas AD cases clustered near the reference pattern.
DISCUSSION: The MMSE-CDR-SB residual may help flag less AD-typical presentations for further etiologic evaluation, but cannot be interpreted as a pathology-specific marker due to substantial overlap across diagnostic groups.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Dynamic imaging markers of incident microhemorrhages and superficial siderosis in the A4 study: A longitudinal person-interval analysis.
Alzheimer's & dementia : the journal of the Alzheimer's Association, 22(8):e71792.
INTRODUCTION: Incident microhemorrhages and superficial siderosis are hemorrhagic magnetic resonance imaging (MRI) abnormalities relevant to amyloid-related imaging abnormalities with hemosiderin deposition (ARIA-H) risk stratification, but evidence exploring their short-term dynamic predictors remains limited.
METHODS: We analyzed longitudinal MRI data from the A4 study, constructing a discrete person-interval dataset for modeling the short-term risk of incident hemorrhagic MRI abnormalities. Models incorporated baseline covariates, alongside dynamic variables of recent microhemorrhage accumulation and current microhemorrhage burden. The outcome was defined as two or more new microhemorrhages or one or more new superficial siderosis between consecutive MRI scans.
RESULTS: Among 1069 participants (3647 intervals), 171 hemorrhagic events occurred. Both current burden (time-to-event: odds ratio [OR] 1.37, 95% confidence interval [CI] 1.09-1.73; all-event: OR 1.24, 95% CI: 1.04-1.49) and recent microhemorrhage accumulation were independently associated with an increased risk of hemorrhagic events (time-to-event: OR 1.83, 95% CI 1.01-3.30; all-event: OR 1.43, 95% CI: 1.00-2.04).
DISCUSSION: Temporal imaging variables may provide independent prognostic information beyond baseline risk, supporting a dynamic model of hemorrhagic risk in Alzheimer's disease.
CLINICAL TRIAL REGISTRATION: Clinical trial of Solanezumab for older individuals who may be at risk for memory loss (A4) (NCT02008357).
Additional Links: PMID-42657501
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42657501,
year = {2026},
author = {Hill, C and Morgan, H and Michopoulou, S and Niranjan, M and Kipps, CM},
title = {Dynamic imaging markers of incident microhemorrhages and superficial siderosis in the A4 study: A longitudinal person-interval analysis.},
journal = {Alzheimer's & dementia : the journal of the Alzheimer's Association},
volume = {22},
number = {8},
pages = {e71792},
pmid = {42657501},
issn = {1552-5279},
support = {//UKRI Engineering and Physical Sciences Research Council Doctoral Landscape Award/ ; //National Institute for Health and Care Research/ ; },
mesh = {Humans ; Female ; *Magnetic Resonance Imaging ; Longitudinal Studies ; Male ; Aged ; *Siderosis/diagnostic imaging/epidemiology ; *Cerebral Hemorrhage/diagnostic imaging/epidemiology ; Incidence ; *Brain/diagnostic imaging ; *Alzheimer Disease/diagnostic imaging ; },
abstract = {INTRODUCTION: Incident microhemorrhages and superficial siderosis are hemorrhagic magnetic resonance imaging (MRI) abnormalities relevant to amyloid-related imaging abnormalities with hemosiderin deposition (ARIA-H) risk stratification, but evidence exploring their short-term dynamic predictors remains limited.
METHODS: We analyzed longitudinal MRI data from the A4 study, constructing a discrete person-interval dataset for modeling the short-term risk of incident hemorrhagic MRI abnormalities. Models incorporated baseline covariates, alongside dynamic variables of recent microhemorrhage accumulation and current microhemorrhage burden. The outcome was defined as two or more new microhemorrhages or one or more new superficial siderosis between consecutive MRI scans.
RESULTS: Among 1069 participants (3647 intervals), 171 hemorrhagic events occurred. Both current burden (time-to-event: odds ratio [OR] 1.37, 95% confidence interval [CI] 1.09-1.73; all-event: OR 1.24, 95% CI: 1.04-1.49) and recent microhemorrhage accumulation were independently associated with an increased risk of hemorrhagic events (time-to-event: OR 1.83, 95% CI 1.01-3.30; all-event: OR 1.43, 95% CI: 1.00-2.04).
DISCUSSION: Temporal imaging variables may provide independent prognostic information beyond baseline risk, supporting a dynamic model of hemorrhagic risk in Alzheimer's disease.
CLINICAL TRIAL REGISTRATION: Clinical trial of Solanezumab for older individuals who may be at risk for memory loss (A4) (NCT02008357).},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
Female
*Magnetic Resonance Imaging
Longitudinal Studies
Male
Aged
*Siderosis/diagnostic imaging/epidemiology
*Cerebral Hemorrhage/diagnostic imaging/epidemiology
Incidence
*Brain/diagnostic imaging
*Alzheimer Disease/diagnostic imaging
RevDate: 2026-08-27
DFT analysis of gamma-secretase interactions with potential inhibitors: therapeutic for Alzheimer's disease.
Physical chemistry chemical physics : PCCP [Epub ahead of print].
Alzheimers disease (AD) is a progressive neurodegenerative disorder characterized by the accumulation of β-amyloid (Aβ) plaques and neurofibrillary tangles, leading to cognitive decline. The enzyme γ-secretase (γS) plays a central role in Aβ production and is therefore an important therapeutic target. In this study, interaction energies were evaluated using the Molecular Fragmentation with Conjugated Caps (MFCC) method combined with Density Functional Theory (DFT) calculations to investigate the interactions between γS and the inhibitors Semagacestat (SEM) and Avagacestat (AVA). The SEM-γS complex exhibited a more favorable total interaction energy, primarily driven by interactions with residues such as Ala431, Lys380, and Leu425. In contrast, the AVA-γS complex showed prominent interactions involving key residues, including Leu381, Leu425, and Leu432, which participate in substrate recognition and stabilization within the enzymes binding pocket. Overall, both ligands highlight the combined importance of hydrophobic and hydrophilic interactions in stabilizing the complexes. This study provides molecular-level insights into the interaction mechanisms of γ-secretase inhibitors, contributing to a better understanding of structure-energy relationships that are essential for the rational design of more selective and effective therapeutic agents for Alzheimers disease.
Additional Links: PMID-42657581
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42657581,
year = {2026},
author = {Junior, WSC and Bezerra, KS and Matias, EGC and Oliveira, JIN and Fulco, UL},
title = {DFT analysis of gamma-secretase interactions with potential inhibitors: therapeutic for Alzheimer's disease.},
journal = {Physical chemistry chemical physics : PCCP},
volume = {},
number = {},
pages = {},
doi = {10.1039/d6cp02037b},
pmid = {42657581},
issn = {1463-9084},
abstract = {Alzheimers disease (AD) is a progressive neurodegenerative disorder characterized by the accumulation of β-amyloid (Aβ) plaques and neurofibrillary tangles, leading to cognitive decline. The enzyme γ-secretase (γS) plays a central role in Aβ production and is therefore an important therapeutic target. In this study, interaction energies were evaluated using the Molecular Fragmentation with Conjugated Caps (MFCC) method combined with Density Functional Theory (DFT) calculations to investigate the interactions between γS and the inhibitors Semagacestat (SEM) and Avagacestat (AVA). The SEM-γS complex exhibited a more favorable total interaction energy, primarily driven by interactions with residues such as Ala431, Lys380, and Leu425. In contrast, the AVA-γS complex showed prominent interactions involving key residues, including Leu381, Leu425, and Leu432, which participate in substrate recognition and stabilization within the enzymes binding pocket. Overall, both ligands highlight the combined importance of hydrophobic and hydrophilic interactions in stabilizing the complexes. This study provides molecular-level insights into the interaction mechanisms of γ-secretase inhibitors, contributing to a better understanding of structure-energy relationships that are essential for the rational design of more selective and effective therapeutic agents for Alzheimers disease.},
}
RevDate: 2026-08-27
Co-Design and Development of Digital Health Solution for Informal Alzheimer's Caregivers.
Alzheimer disease and associated disorders [Epub ahead of print].
INTRODUCTION: Alzheimer disease (AD) imposes significant cognitive, emotional, and practical challenges on individuals and their caregivers. Informal caregivers, often family members, assume a central role in managing complex care routines, frequently with limited support. Digital tools offer promising avenues for addressing these challenges, yet existing solutions often lack integration, personalization, or user-centered design.
METHODS: This study presents the design, development, and validation of AlzCare, a digital health solution developed using a user-centered design (UCD) methodology. The needs assessment involved 52 survey respondents and 6 in-depth interviews with caregivers and healthcare professionals. Based on this, a prototype was developed integrating modules for health monitoring, cognitive stimulation, task management, and caregiver support. Usability and functionality were evaluated through testing with 25 participants using task-based interaction, semistructured interviews, and the System Usability Scale (SUS).
RESULTS: The solution received highly positive feedback regarding usability, relevance, and emotional resonance. The SUS yielded a mean score of 90.9, indicating "Best Imaginable" usability. Users valued features such as daily health tracking, the "Who Am I?" reminiscence tool, and the caregiver support section. Suggestions included automating data entry and integrating wearables.
DISCUSSION: AlzCare demonstrates how digital technologies developed through participatory approaches can support informal dementia caregiving across practical and emotional dimensions. Future work will focus on broader clinical integration, automation, and longitudinal validation in real-world settings. The findings reinforce the value of accessible, holistic digital tools in advancing dementia care within telemedicine ecosystems.
Additional Links: PMID-42657604
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42657604,
year = {2026},
author = {Almeida, MM and Fernandes, CS and Campos Ferreira, M},
title = {Co-Design and Development of Digital Health Solution for Informal Alzheimer's Caregivers.},
journal = {Alzheimer disease and associated disorders},
volume = {},
number = {},
pages = {},
pmid = {42657604},
issn = {1546-4156},
abstract = {INTRODUCTION: Alzheimer disease (AD) imposes significant cognitive, emotional, and practical challenges on individuals and their caregivers. Informal caregivers, often family members, assume a central role in managing complex care routines, frequently with limited support. Digital tools offer promising avenues for addressing these challenges, yet existing solutions often lack integration, personalization, or user-centered design.
METHODS: This study presents the design, development, and validation of AlzCare, a digital health solution developed using a user-centered design (UCD) methodology. The needs assessment involved 52 survey respondents and 6 in-depth interviews with caregivers and healthcare professionals. Based on this, a prototype was developed integrating modules for health monitoring, cognitive stimulation, task management, and caregiver support. Usability and functionality were evaluated through testing with 25 participants using task-based interaction, semistructured interviews, and the System Usability Scale (SUS).
RESULTS: The solution received highly positive feedback regarding usability, relevance, and emotional resonance. The SUS yielded a mean score of 90.9, indicating "Best Imaginable" usability. Users valued features such as daily health tracking, the "Who Am I?" reminiscence tool, and the caregiver support section. Suggestions included automating data entry and integrating wearables.
DISCUSSION: AlzCare demonstrates how digital technologies developed through participatory approaches can support informal dementia caregiving across practical and emotional dimensions. Future work will focus on broader clinical integration, automation, and longitudinal validation in real-world settings. The findings reinforce the value of accessible, holistic digital tools in advancing dementia care within telemedicine ecosystems.},
}
RevDate: 2026-08-27
Quantification of Phosphorylated Tau Protein in Alzheimer's Disease Patients' Fluids With Electrolyte-Gated Organic Transistor Biosensors.
Advanced healthcare materials [Epub ahead of print].
Dementia is a syndrome that affects millions of people in the world, and Alzheimer's disease (AD) is the most common cause. The diagnosis of AD begins with cognitive symptoms such as mild cognitive impairment (MCI) but requires the demonstration and quantification of the underlying neuropathological processes through the measurement of specific biomarkers. Among these, the phosphorylated tau protein at threonine 181 (p-tau 181) is considered specific for AD diagnosis in people with MCI. In this work, we report the detection of p-tau 181 spanning from physiological to pathological concentrations in cerebrospinal fluids from patients with MCI. The proposed sensor is based on an electrolyte-gated organic transistor functionalized with specific anti-p-tau 181 antibodies. We analyzed the multiparametric sensor response using a Langmuir model to extract the thermodynamic affinity constant, resulting in values between 10[12] and 10[13]. The sensor response is then correlated with the gray matter volume of the same patients from Magnetic Resonance Imaging: the resulting maps show areas in the brain where the gray matter density decreases with increasing levels of p-tau in CSF.
Additional Links: PMID-42657615
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42657615,
year = {2026},
author = {Berto, M and Manco Urbina, PA and Paradisi, A and Sensi, M and Iacovino, N and Carbone, C and Bedin, R and Pinti, M and Biscarini, F and Zamboni, G and Bortolotti, CA},
title = {Quantification of Phosphorylated Tau Protein in Alzheimer's Disease Patients' Fluids With Electrolyte-Gated Organic Transistor Biosensors.},
journal = {Advanced healthcare materials},
volume = {},
number = {},
pages = {e71634},
doi = {10.1002/adhm.71634},
pmid = {42657615},
issn = {2192-2659},
support = {//European Union-NextGenerationEU/ ; //University of Modena and Reggio Emilia/ ; //Fondo Italiano per la Scienza - FIS 3/ ; },
abstract = {Dementia is a syndrome that affects millions of people in the world, and Alzheimer's disease (AD) is the most common cause. The diagnosis of AD begins with cognitive symptoms such as mild cognitive impairment (MCI) but requires the demonstration and quantification of the underlying neuropathological processes through the measurement of specific biomarkers. Among these, the phosphorylated tau protein at threonine 181 (p-tau 181) is considered specific for AD diagnosis in people with MCI. In this work, we report the detection of p-tau 181 spanning from physiological to pathological concentrations in cerebrospinal fluids from patients with MCI. The proposed sensor is based on an electrolyte-gated organic transistor functionalized with specific anti-p-tau 181 antibodies. We analyzed the multiparametric sensor response using a Langmuir model to extract the thermodynamic affinity constant, resulting in values between 10[12] and 10[13]. The sensor response is then correlated with the gray matter volume of the same patients from Magnetic Resonance Imaging: the resulting maps show areas in the brain where the gray matter density decreases with increasing levels of p-tau in CSF.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Priorities of people living with Alzheimer's and care partners: What Matters Most?.
Alzheimer's & dementia : the journal of the Alzheimer's Association, 22(8):e71554.
INTRODUCTION: Understanding the experience of people living with Alzheimer's disease (PLWAD) and care partners is central to defining meaningful treatment outcomes. The What Matters Most (WMM) research program seeks to identify and measure treatment-related needs, preferences, and priorities across the disease continuum.
METHODS: This mixed-methods, observational, US-based study included qualitative interviews and a cross-sectional, web-based quantitative survey assessing priorities among WMM model concepts and domains.
RESULTS: Racially and ethnically diverse participants represented the full spectrum of disease severity. Qualitative interviews (N = 64) supported a WMM conceptual model of disease comprising 50 concepts across six domains: General Independence, Thought Processing, Communication, Daily Activities, Emotions, and Social Life/Activities. All WMM concepts were deemed important, but the quantitative survey priority ranking (N = 640) identified differences in prioritization among PLWAD and care partners.
DISCUSSION: These findings provide novel, critical insights into the lived experience of Alzheimer's disease (AD) and the identification of meaningful treatment outcomes.
Additional Links: PMID-42657669
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42657669,
year = {2026},
author = {Romano, CD and Bratlee-Whitaker, E and Hartry, A and Taylor, J and Callahan, LF and Monks, D and Kremer, I and Lappin, D and Frangiosa, T and Sangodkar, S and Lee, J and Shirneshan, E and Slowiejko, D and DiBenedetti, D and Herring, WL and Bussberg, C and Dardis, GJ and Goss, D and Edwards, T and McLeod, L and Poulos, C and Paulsen, R},
title = {Priorities of people living with Alzheimer's and care partners: What Matters Most?.},
journal = {Alzheimer's & dementia : the journal of the Alzheimer's Association},
volume = {22},
number = {8},
pages = {e71554},
pmid = {42657669},
issn = {1552-5279},
support = {//UsAgainstAlzheimer's/ ; },
mesh = {Humans ; *Alzheimer Disease/psychology ; Female ; Male ; *Caregivers/psychology ; Cross-Sectional Studies ; Aged ; Aged, 80 and over ; Qualitative Research ; Activities of Daily Living ; Middle Aged ; Surveys and Questionnaires ; },
abstract = {INTRODUCTION: Understanding the experience of people living with Alzheimer's disease (PLWAD) and care partners is central to defining meaningful treatment outcomes. The What Matters Most (WMM) research program seeks to identify and measure treatment-related needs, preferences, and priorities across the disease continuum.
METHODS: This mixed-methods, observational, US-based study included qualitative interviews and a cross-sectional, web-based quantitative survey assessing priorities among WMM model concepts and domains.
RESULTS: Racially and ethnically diverse participants represented the full spectrum of disease severity. Qualitative interviews (N = 64) supported a WMM conceptual model of disease comprising 50 concepts across six domains: General Independence, Thought Processing, Communication, Daily Activities, Emotions, and Social Life/Activities. All WMM concepts were deemed important, but the quantitative survey priority ranking (N = 640) identified differences in prioritization among PLWAD and care partners.
DISCUSSION: These findings provide novel, critical insights into the lived experience of Alzheimer's disease (AD) and the identification of meaningful treatment outcomes.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
*Alzheimer Disease/psychology
Female
Male
*Caregivers/psychology
Cross-Sectional Studies
Aged
Aged, 80 and over
Qualitative Research
Activities of Daily Living
Middle Aged
Surveys and Questionnaires
RevDate: 2026-08-28
CmpDate: 2026-08-27
Disruption of sphingolipid metabolism promotes tau seeding through endolysosomal membrane rigidification and rupture.
eLife, 14:.
Endolysosomal dysfunction is a hallmark of Alzheimer's disease and related tauopathies, yet underlying mechanisms remain poorly understood. This study investigates the role of sphingolipid metabolism in maintaining endolysosomal membrane integrity and its impact on tau aggregation and toxicity in Caenorhabditis elegans and human cell culture models. Fluorescence recovery after photobleaching and C-Laurdan dye imaging revealed that silencing sphingolipid metabolism genes reduced endolysosomal vesicle membrane fluidity, increasing their rupture. The accumulation of aggregated tau in endolysosomal vesicles further aggravated endomembrane rigidification and damage, and promoted seeded tau aggregation, potentially by facilitating the escape of tau seeds from the endolysosomal system. Supplementation with unsaturated fatty acids improved membrane fluidity, suppressing endolysosomal rupture and seeded tau aggregation in cell models, and alleviating tau-associated neurotoxicity in C. elegans. Together, this study provides mechanistic insight into how perturbation of sphingolipid metabolism promotes endolysosomal membrane damage and contributes to the escape of aggregated tau from this compartment, suggesting that restoration of membrane fluidity may represent a strategy to limit tau propagation and toxicity.
Additional Links: PMID-42657790
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42657790,
year = {2026},
author = {Tittelmeier, J and Sandhof, CA and Martin, N and El-Kabarity, D and Ngonza-Nito, SB and Melki, R and Nussbaum-Krammer, C},
title = {Disruption of sphingolipid metabolism promotes tau seeding through endolysosomal membrane rigidification and rupture.},
journal = {eLife},
volume = {14},
number = {},
pages = {},
pmid = {42657790},
issn = {2050-084X},
support = {ALZ201912009776//Fondation pour la Recherche Médicale/ ; 21053//Alzheimer Forschung Initiative/ ; },
mesh = {Animals ; *Sphingolipids/metabolism ; *tau Proteins/metabolism ; Caenorhabditis elegans/metabolism ; Humans ; *Lysosomes/metabolism ; *Endosomes/metabolism ; *Membrane Fluidity ; *Intracellular Membranes/metabolism ; },
abstract = {Endolysosomal dysfunction is a hallmark of Alzheimer's disease and related tauopathies, yet underlying mechanisms remain poorly understood. This study investigates the role of sphingolipid metabolism in maintaining endolysosomal membrane integrity and its impact on tau aggregation and toxicity in Caenorhabditis elegans and human cell culture models. Fluorescence recovery after photobleaching and C-Laurdan dye imaging revealed that silencing sphingolipid metabolism genes reduced endolysosomal vesicle membrane fluidity, increasing their rupture. The accumulation of aggregated tau in endolysosomal vesicles further aggravated endomembrane rigidification and damage, and promoted seeded tau aggregation, potentially by facilitating the escape of tau seeds from the endolysosomal system. Supplementation with unsaturated fatty acids improved membrane fluidity, suppressing endolysosomal rupture and seeded tau aggregation in cell models, and alleviating tau-associated neurotoxicity in C. elegans. Together, this study provides mechanistic insight into how perturbation of sphingolipid metabolism promotes endolysosomal membrane damage and contributes to the escape of aggregated tau from this compartment, suggesting that restoration of membrane fluidity may represent a strategy to limit tau propagation and toxicity.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Animals
*Sphingolipids/metabolism
*tau Proteins/metabolism
Caenorhabditis elegans/metabolism
Humans
*Lysosomes/metabolism
*Endosomes/metabolism
*Membrane Fluidity
*Intracellular Membranes/metabolism
RevDate: 2026-08-28
From Proteinopathy to Immunopathy in Alzheimer's Disease-A Role for Astrocytic Calcineurin?.
Journal of neurochemistry, 170(9):e70543.
Additional Links: PMID-42658010
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42658010,
year = {2026},
author = {Lim, D and Tapella, L},
title = {From Proteinopathy to Immunopathy in Alzheimer's Disease-A Role for Astrocytic Calcineurin?.},
journal = {Journal of neurochemistry},
volume = {170},
number = {9},
pages = {e70543},
pmid = {42658010},
issn = {1471-4159},
support = {PNRR-MCNT2-2023-12377363//Ministero della Salute/ ; },
}
RevDate: 2026-08-27
Bisecting GlcNAc in N-glycan regulates synaptic maturation.
The Biochemical journal pii:237983 [Epub ahead of print].
Bisecting GlcNAc, a central branch in N-glycans synthesized by the N-acetylglucosaminyltransferase III (MGAT3; also known as GnT-III), is highly expressed in neurons. Although pathological roles of MGAT3 and bisecting GlcNAc have been demonstrated in Alzheimer's disease, their physiological functions in neurons remain unclear. To identify their physiological functions, here we examine the morphology of neurons in knockout (Mgat3-/-) mouse brains and investigate the expression and localization of bisecting GlcNAc-bearing glycoproteins involved in neuronal activity and morphogenesis. We found impaired neurite extension and spine maturation in cultured cortical neurons of Mgat3-/- mice, along with reduced stimulus-induced in vivo neuronal activity. Moreover, key glycoproteins for these processes (specifically α-amino-3-hydroxy-5-methylisoxazole-4-propionic acid [AMPA]-type glutamate receptors) showed reduced accumulation in postsynaptic density membrane fractions and a weakened interaction with transmembrane AMPA receptor regulatory protein 8 (TARP8) in Mgat3-/- mouse brain. These results suggest that bisecting GlcNAc plays important roles in synaptic maturation, highlighting a new mechanism for neuronal activity regulated by specific N-glycans.
Additional Links: PMID-42658042
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42658042,
year = {2026},
author = {Hashimoto, Y and Bao, W and Yamaguchi, S and Watanabe, M and Hashimoto, M and Ohno, S and Yamaguchi, Y and Matsuzawa, K and Tokoro, Y and Kizuka, Y},
title = {Bisecting GlcNAc in N-glycan regulates synaptic maturation.},
journal = {The Biochemical journal},
volume = {},
number = {},
pages = {},
doi = {10.1042/BCJ20260379},
pmid = {42658042},
issn = {1470-8728},
abstract = {Bisecting GlcNAc, a central branch in N-glycans synthesized by the N-acetylglucosaminyltransferase III (MGAT3; also known as GnT-III), is highly expressed in neurons. Although pathological roles of MGAT3 and bisecting GlcNAc have been demonstrated in Alzheimer's disease, their physiological functions in neurons remain unclear. To identify their physiological functions, here we examine the morphology of neurons in knockout (Mgat3-/-) mouse brains and investigate the expression and localization of bisecting GlcNAc-bearing glycoproteins involved in neuronal activity and morphogenesis. We found impaired neurite extension and spine maturation in cultured cortical neurons of Mgat3-/- mice, along with reduced stimulus-induced in vivo neuronal activity. Moreover, key glycoproteins for these processes (specifically α-amino-3-hydroxy-5-methylisoxazole-4-propionic acid [AMPA]-type glutamate receptors) showed reduced accumulation in postsynaptic density membrane fractions and a weakened interaction with transmembrane AMPA receptor regulatory protein 8 (TARP8) in Mgat3-/- mouse brain. These results suggest that bisecting GlcNAc plays important roles in synaptic maturation, highlighting a new mechanism for neuronal activity regulated by specific N-glycans.},
}
RevDate: 2026-08-27
The Joint Effects of Life's Essential 8 and Genetics on Mild Cognitive Impairment and Dementia Risk in People With Diabetes: Findings From the UK Biobank and All of Us.
Diabetes care pii:172410 [Epub ahead of print].
OBJECTIVE: We examined how cardiovascular health (CVH), measured by Life's Essential 8 (LE8), and genetic risk are jointly associated with risks of mild cognitive impairment (MCI), dementia, and related cognitive outcomes in people with diabetes.
RESEARCH DESIGN AND METHODS: We analyzed 41,374 participants without dementia from the UK Biobank (UKB) and 9,766 from All of Us (AoU). LE8, comprising diet, physical activity, nicotine exposure, sleep, body mass index, lipids, blood glucose, and blood pressure, was scored from 0 to 100 and categorized as low, moderate, or high. Genetic risk was assessed using APOE ε4 alleles and polygenic risk scores (PRS) for Alzheimer disease. We used Cox regression to examine associations of LE8 with MCI and dementia and linear regression to assess MRI-based brain functional measures and cognitive test outcomes, adjusting for covariates. Interactions between LE8 and genetic risk were tested on multiplicative and additive scales.
RESULTS: Over 15 years of follow-up (UKB), moderate or high CVH versus low CVH was associated with a lower risk of MCI (hazard ratio 0.82 [95% CI 0.71, 0.95], P < 0.05) but not with risk of all-cause dementia (0.97 [0.84, 1.11], P = 0.63). In participants at high genetic risk (high PRS), moderate or high CVH was associated with a lower risk of MCI (0.78 [0.62, 0.98], P for additive interaction < 0.05). AoU results were consistent.
CONCLUSIONS: Better CVH was significantly associated with a lower risk of MCI in people with diabetes, accounting for genetic risk. The association between CVH and MCI and dementia was stronger among individuals with low or moderate genetic risk and appeared attenuated among those with high genetic risk.
Additional Links: PMID-42658064
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42658064,
year = {2026},
author = {Wu, X and Zu, Y and Lu, Y and Zhao, Y and Crosslin, D and Fonseca, V and Maraganore, D and Yoshida, Y},
title = {The Joint Effects of Life's Essential 8 and Genetics on Mild Cognitive Impairment and Dementia Risk in People With Diabetes: Findings From the UK Biobank and All of Us.},
journal = {Diabetes care},
volume = {},
number = {},
pages = {},
doi = {10.2337/dc25-3126},
pmid = {42658064},
issn = {1935-5548},
support = {1P20GM152305//Foundation for the National Institutes of Health/ ; 7-23-JDFWH-10//Foundation for the National Institutes of Health/ ; U54 GM104940//Foundation for the National Institutes of Health/ ; },
abstract = {OBJECTIVE: We examined how cardiovascular health (CVH), measured by Life's Essential 8 (LE8), and genetic risk are jointly associated with risks of mild cognitive impairment (MCI), dementia, and related cognitive outcomes in people with diabetes.
RESEARCH DESIGN AND METHODS: We analyzed 41,374 participants without dementia from the UK Biobank (UKB) and 9,766 from All of Us (AoU). LE8, comprising diet, physical activity, nicotine exposure, sleep, body mass index, lipids, blood glucose, and blood pressure, was scored from 0 to 100 and categorized as low, moderate, or high. Genetic risk was assessed using APOE ε4 alleles and polygenic risk scores (PRS) for Alzheimer disease. We used Cox regression to examine associations of LE8 with MCI and dementia and linear regression to assess MRI-based brain functional measures and cognitive test outcomes, adjusting for covariates. Interactions between LE8 and genetic risk were tested on multiplicative and additive scales.
RESULTS: Over 15 years of follow-up (UKB), moderate or high CVH versus low CVH was associated with a lower risk of MCI (hazard ratio 0.82 [95% CI 0.71, 0.95], P < 0.05) but not with risk of all-cause dementia (0.97 [0.84, 1.11], P = 0.63). In participants at high genetic risk (high PRS), moderate or high CVH was associated with a lower risk of MCI (0.78 [0.62, 0.98], P for additive interaction < 0.05). AoU results were consistent.
CONCLUSIONS: Better CVH was significantly associated with a lower risk of MCI in people with diabetes, accounting for genetic risk. The association between CVH and MCI and dementia was stronger among individuals with low or moderate genetic risk and appeared attenuated among those with high genetic risk.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-27
From Periodontal Pocket to Systemic Diseases: Mechanistic Insights Into the Role of Porphyromonas gingivalis in Host Pathology.
Journal of cellular and molecular medicine, 30(16):e71327.
Porphyromonas gingivalis (P. gingivalis), a keystone pathogen in periodontitis, has been increasingly recognised as a mechanistic bridge linking periodontal infection to pathological destruction in distant organs. P. gingivalis virulence factors, including gingipains, lipopolysaccharides (LPS), and outer membrane vesicles (OMVs), mediate complex host-pathogen interactions. In this review, we critically evaluated recent experimental studies which demonstrate the effects of P. gingivalis oral infection on systemic diseases, including cardiovascular disease (CVD), diabetes mellitus (DM), adverse pregnancy outcomes (APOs), colorectal cancer (CRC), and Alzheimer's disease (AD). In CVD, DM, and AD, P. gingivalis gingipains exert proteolytic activity that disrupts key cellular targets, including endothelial adhesion molecules, insulin receptors in insulin-responsive tissues, and neuronal proteins. In AD, P. gingivalis LPS contributes to neuronal damage by inducing tau hyperphosphorylation and synaptic dysfunction. In APO and AD, P. gingivalis OMVs play a central role in compromising barrier integrity. These processes converge on five principal pathogenic pathways: (1) barrier and structural disruption, (2) immune activation and subversion, (3) mitochondrial dysfunction and oxidative stress induction, (4) systemic inflammation, and (5) metabolism-mediated effects. Understanding these shared pathways underscores the importance of controlling periodontal disease in promoting systemic health.
Additional Links: PMID-42658102
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42658102,
year = {2026},
author = {Basalim, AA and Lu, EM},
title = {From Periodontal Pocket to Systemic Diseases: Mechanistic Insights Into the Role of Porphyromonas gingivalis in Host Pathology.},
journal = {Journal of cellular and molecular medicine},
volume = {30},
number = {16},
pages = {e71327},
pmid = {42658102},
issn = {1582-4934},
mesh = {Humans ; *Porphyromonas gingivalis/pathogenicity/physiology ; *Host-Pathogen Interactions ; Animals ; Alzheimer Disease/microbiology/pathology ; *Periodontitis/microbiology/pathology ; *Bacteroidaceae Infections/microbiology/pathology/complications ; Cardiovascular Diseases/microbiology/pathology ; },
abstract = {Porphyromonas gingivalis (P. gingivalis), a keystone pathogen in periodontitis, has been increasingly recognised as a mechanistic bridge linking periodontal infection to pathological destruction in distant organs. P. gingivalis virulence factors, including gingipains, lipopolysaccharides (LPS), and outer membrane vesicles (OMVs), mediate complex host-pathogen interactions. In this review, we critically evaluated recent experimental studies which demonstrate the effects of P. gingivalis oral infection on systemic diseases, including cardiovascular disease (CVD), diabetes mellitus (DM), adverse pregnancy outcomes (APOs), colorectal cancer (CRC), and Alzheimer's disease (AD). In CVD, DM, and AD, P. gingivalis gingipains exert proteolytic activity that disrupts key cellular targets, including endothelial adhesion molecules, insulin receptors in insulin-responsive tissues, and neuronal proteins. In AD, P. gingivalis LPS contributes to neuronal damage by inducing tau hyperphosphorylation and synaptic dysfunction. In APO and AD, P. gingivalis OMVs play a central role in compromising barrier integrity. These processes converge on five principal pathogenic pathways: (1) barrier and structural disruption, (2) immune activation and subversion, (3) mitochondrial dysfunction and oxidative stress induction, (4) systemic inflammation, and (5) metabolism-mediated effects. Understanding these shared pathways underscores the importance of controlling periodontal disease in promoting systemic health.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
*Porphyromonas gingivalis/pathogenicity/physiology
*Host-Pathogen Interactions
Animals
Alzheimer Disease/microbiology/pathology
*Periodontitis/microbiology/pathology
*Bacteroidaceae Infections/microbiology/pathology/complications
Cardiovascular Diseases/microbiology/pathology
RevDate: 2026-08-27
A comparative study of vision transformer architectures for the detection of Alzheimer's disease using magnetic resonance images.
Physical and engineering sciences in medicine [Epub ahead of print].
Alzheimer's disease is a neurodegenerative disease that affects millions of people worldwide. With the increasing global elderly population, early and accurate diagnosis of the disease is becoming increasingly important to slow its progression and improve patient outcomes. This study aims to present a comprehensive vision transformer-based solution proposal for the accurate and rapid detection of Alzheimer's disease using magnetic resonance images. Nine different transformer-based models, namely Vision Transformer, Pooling-based Vision Transformer, Convolutional Vision Transformer, Crossformer, Cross-attention Vision Transformer, Nested Transformers, Multi-Axis Vision Transformer, Separable Vision Transformer, and MobileViT, were used to analyse their effectiveness in diagnosing the disease in detail. Experimental results have shown that transformer-based architectures exhibit high performance in the detection of Alzheimer's disease. In binary classification results, the Multi-Axis Vision Transformer model stood out from other models by achieving the most successful performance in accuracy, sensitivity, specificity, precision, and f1-score metrics. In multi-class classification results, the Crossformer model provided the highest results in terms of sensitivity, specificity, precision, and f1-score, while the Separable Vision Transformer model was the most successful model in the accuracy metric. Furthermore, it was observed that the Mobile Vision Transformer model produced competitive results, especially in sensitivity and specificity metrics. In conclusion, this study provides a promising framework for the use of vision transformers in neuroimaging, providing an innovative solution for the early diagnosis of Alzheimer's disease.
Additional Links: PMID-42658406
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42658406,
year = {2026},
author = {Uçar, M},
title = {A comparative study of vision transformer architectures for the detection of Alzheimer's disease using magnetic resonance images.},
journal = {Physical and engineering sciences in medicine},
volume = {},
number = {},
pages = {},
pmid = {42658406},
issn = {2662-4737},
abstract = {Alzheimer's disease is a neurodegenerative disease that affects millions of people worldwide. With the increasing global elderly population, early and accurate diagnosis of the disease is becoming increasingly important to slow its progression and improve patient outcomes. This study aims to present a comprehensive vision transformer-based solution proposal for the accurate and rapid detection of Alzheimer's disease using magnetic resonance images. Nine different transformer-based models, namely Vision Transformer, Pooling-based Vision Transformer, Convolutional Vision Transformer, Crossformer, Cross-attention Vision Transformer, Nested Transformers, Multi-Axis Vision Transformer, Separable Vision Transformer, and MobileViT, were used to analyse their effectiveness in diagnosing the disease in detail. Experimental results have shown that transformer-based architectures exhibit high performance in the detection of Alzheimer's disease. In binary classification results, the Multi-Axis Vision Transformer model stood out from other models by achieving the most successful performance in accuracy, sensitivity, specificity, precision, and f1-score metrics. In multi-class classification results, the Crossformer model provided the highest results in terms of sensitivity, specificity, precision, and f1-score, while the Separable Vision Transformer model was the most successful model in the accuracy metric. Furthermore, it was observed that the Mobile Vision Transformer model produced competitive results, especially in sensitivity and specificity metrics. In conclusion, this study provides a promising framework for the use of vision transformers in neuroimaging, providing an innovative solution for the early diagnosis of Alzheimer's disease.},
}
RevDate: 2026-08-27
Comparison of quantitative digital and semiquantitative assessments of tau pathology in relation to regional in vivo tau PET.
Journal of neuropathology and experimental neurology pii:8771920 [Epub ahead of print].
Quantitative digital image analysis has emerged as a powerful tool for assessing neuropathological burden. Although previous studies have compared quantitative digital and semiquantitative pathology measures, their respective relationships with regionally corresponding in vivo tau PET measures remain poorly characterized. We compared quantitative digital pathology quantification and semiquantitative regional gradings of phosphorylated tau (ptau) immunohistochemical staining and assessed their correlations with regional in vivo [18F]flortaucipir standardized uptake value ratios (SUVRs) in 52 cases from the AVID A16 end-of-life study. Digital pathology quantification and semiquantitative gradings of ptau were strongly correlated across all 19 cortical and mesial temporal regions examined (Spearman's rho range: 0.6-0.9; all P < .0001). Both approaches showed similarly robust associations with regionally corresponding tau PET SUVRs. Direct comparison of matched correlation coefficients revealed stronger PET-pathology associations for the digital quantification in the left amygdala and the inferior parietal lobule. Overall, digital pathology quantification and semiquantitative assessments of ptau pathology yielded highly comparable results, both in the quantification of regional pathology burden and in their relationships with tau PET measures. These findings support the use of digital pathology quantification methods and suggest that semiquantitative pathology gradings remain a valid and informative approach for clinicopathological correlation studies.
Additional Links: PMID-42658568
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42658568,
year = {2026},
author = {Tremblay, C and Freiburghaus, T and Pawlik, D and Hauer, KO and Serrano, GE and Zeighami, Y and Dadar, M and Intorcia, AJ and Ossenkoppele, R and Pontecorvo, MJ and Hansson, O and Smith, R and Beach, TG},
title = {Comparison of quantitative digital and semiquantitative assessments of tau pathology in relation to regional in vivo tau PET.},
journal = {Journal of neuropathology and experimental neurology},
volume = {},
number = {},
pages = {},
doi = {10.1093/jnen/nlag093},
pmid = {42658568},
issn = {1554-6578},
support = {//Avid Radiopharmaceuticals/ ; //Eli Lilly and Company/ ; U24 NS072026//National Institute of Neurological Disorders and Stroke (NINDS)/ ; //National Brain and Tissue Resource for Parkinson's Disease and Related Disorders/ ; P30 AG019610//National Institute on Aging (NIA)/ ; P30AG072980//National Institute on Aging (NIA)/ ; //Arizona Alzheimer's Disease Center/ ; //Arizona Department of Health Services/ ; //Arizona Alzheimer's Research Center/ ; //Arizona Biomedical Research Commission/ ; //Arizona Parkinson's Disease Consortium/ ; //The Michael J. Fox Foundation (MJFF) for Parkinson's Research/ ; ADG-101096455/ERC_/European Research Council/International ; ZEN24-1069572/ALZ/Alzheimer's Association/United States ; SG-23-1061717/ALZ/Alzheimer's Association/United States ; //GHR Foundation/ ; 2022-00775//Swedish Research Council/ ; ERAPERMED2021-184//ERA PerMed/ ; //Knut and Alice Wallenberg foundation/ ; //Strategic Research Area MultiPark (Multidisciplinary Research in Parkinson's disease) at Lund University/ ; AF-980907//Swedish Alzheimer Foundation/ ; AF-939981//Swedish Alzheimer Foundation/ ; FO2021-0293//Swedish Brain Foundation/ ; 1412/22//Parkinson foundation of Sweden/ ; //Cure Alzheimer's fund/ ; //Rönström Family Foundation/ ; 2020-O000028//Konung Gustaf V:s och Drottning Victorias Frimurarestiftelse, Skåne University Hospital Foundation/ ; 2022-1259//Regionalt Forskningsstöd/ ; 2021-1013//Regionalt Forskningsstöd/ ; //Bundy Academy/ ; //Kockska Foundation/ ; 2022-Projekt0080//Swedish federal government under the ALF agreement/ ; 2020-YF0020//Swedish federal government under the ALF agreement/ ; },
abstract = {Quantitative digital image analysis has emerged as a powerful tool for assessing neuropathological burden. Although previous studies have compared quantitative digital and semiquantitative pathology measures, their respective relationships with regionally corresponding in vivo tau PET measures remain poorly characterized. We compared quantitative digital pathology quantification and semiquantitative regional gradings of phosphorylated tau (ptau) immunohistochemical staining and assessed their correlations with regional in vivo [18F]flortaucipir standardized uptake value ratios (SUVRs) in 52 cases from the AVID A16 end-of-life study. Digital pathology quantification and semiquantitative gradings of ptau were strongly correlated across all 19 cortical and mesial temporal regions examined (Spearman's rho range: 0.6-0.9; all P < .0001). Both approaches showed similarly robust associations with regionally corresponding tau PET SUVRs. Direct comparison of matched correlation coefficients revealed stronger PET-pathology associations for the digital quantification in the left amygdala and the inferior parietal lobule. Overall, digital pathology quantification and semiquantitative assessments of ptau pathology yielded highly comparable results, both in the quantification of regional pathology burden and in their relationships with tau PET measures. These findings support the use of digital pathology quantification methods and suggest that semiquantitative pathology gradings remain a valid and informative approach for clinicopathological correlation studies.},
}
RevDate: 2026-08-27
Lifestyle activities and risk of incident dementia from linked insurance claims in the Baltimore Experience Corps Study.
The journals of gerontology. Series B, Psychological sciences and social sciences pii:8771956 [Epub ahead of print].
OBJECTIVES: Lifestyle activity engagement in later life may protect against dementia, but studies have often been limited to short follow-up periods and predominantly White samples. We examined activity variety and frequency as predictors of incident dementia, leveraging 15 years of linked longitudinal insurance claims data in the Baltimore Experience Corps Study (BECS).
METHODS: Participants were 482 individuals from BECS (2006-2013) with linked insurance claims (mean age=68.2, 84% women, 95% Black/African American). Participants self-reported baseline engagement in 28 activities. We calculated the number of unique activities (activity variety) and average frequency of engagement across reported activities (activity frequency). Incident dementia (2008-2022) was ascertained from CMS and private claims using the Bynum-EM algorithm. We used Cox proportional hazards models, adjusting for age and intervention group, and tested multiple follow-up periods (5-year, 15-year).
RESULTS: The average baseline variety was 18.8 activities (SD = 3.3) and frequency was 13.1 days/month (SD = 3.2). For the 15-year follow-up only, higher activity variety was associated with lower risk of incident dementia (HR=.94, 95% CI: 0.89-0.99), equivalent to about a 6-month delay in diagnosis per additional activity. This association was attenuated after adjusting for additional demographics (e.g., sex, education), prevalent health conditions, and depression (HR=.96, 95% CI: 0.90-1.01). Activity frequency was not significant in any model.
DISCUSSION: Higher activity variety, but not frequency, modestly predicted lower dementia risk over 15 years in a sample of primarily Black older adults. Findings suggest that engagement in a range of activities, rather than more frequent engagement in limited activities, may elicit greater cognitive benefits.
Additional Links: PMID-42658656
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42658656,
year = {2026},
author = {Moored, KD and Sekhon, VK and Xue, QL and Parisi, JM and Amjad, H and Rebok, GW and Eldreth, DA and Carlson, MC},
title = {Lifestyle activities and risk of incident dementia from linked insurance claims in the Baltimore Experience Corps Study.},
journal = {The journals of gerontology. Series B, Psychological sciences and social sciences},
volume = {},
number = {},
pages = {},
doi = {10.1093/geronb/gbag177},
pmid = {42658656},
issn = {1758-5368},
abstract = {OBJECTIVES: Lifestyle activity engagement in later life may protect against dementia, but studies have often been limited to short follow-up periods and predominantly White samples. We examined activity variety and frequency as predictors of incident dementia, leveraging 15 years of linked longitudinal insurance claims data in the Baltimore Experience Corps Study (BECS).
METHODS: Participants were 482 individuals from BECS (2006-2013) with linked insurance claims (mean age=68.2, 84% women, 95% Black/African American). Participants self-reported baseline engagement in 28 activities. We calculated the number of unique activities (activity variety) and average frequency of engagement across reported activities (activity frequency). Incident dementia (2008-2022) was ascertained from CMS and private claims using the Bynum-EM algorithm. We used Cox proportional hazards models, adjusting for age and intervention group, and tested multiple follow-up periods (5-year, 15-year).
RESULTS: The average baseline variety was 18.8 activities (SD = 3.3) and frequency was 13.1 days/month (SD = 3.2). For the 15-year follow-up only, higher activity variety was associated with lower risk of incident dementia (HR=.94, 95% CI: 0.89-0.99), equivalent to about a 6-month delay in diagnosis per additional activity. This association was attenuated after adjusting for additional demographics (e.g., sex, education), prevalent health conditions, and depression (HR=.96, 95% CI: 0.90-1.01). Activity frequency was not significant in any model.
DISCUSSION: Higher activity variety, but not frequency, modestly predicted lower dementia risk over 15 years in a sample of primarily Black older adults. Findings suggest that engagement in a range of activities, rather than more frequent engagement in limited activities, may elicit greater cognitive benefits.},
}
RevDate: 2026-08-27
iDCF: Interpretable deconvolution of cell fractions via biologically-informed deep learning using scRNA-seq data.
PLoS computational biology, 22(8):e1014727 pii:PCOMPBIOL-D-26-00538 [Epub ahead of print].
Precise resolution of cellular heterogeneity within complex tissues is fundamental to deciphering disease etiologies from bulk transcriptomic profiles. While computational deconvolution offers a scalable alternative, current deep learning methods predominantly operate as "black boxes," neglecting the structural constraints of biological laws. This reliance on purely data-driven feature extraction often yields biologically incoherent predictions and limited mechanistic interpretability. iDCF (Interpretable Deconvolution of Cell Fractions) is a novel framework that enforces biological topology onto deep neural networks. The iDCF architecture employs a dual-stream design, synergizing a standard deep network with a knowledge-based sparse neural network (KSNN) explicitly masked by pathway definitions and protein-protein interaction (PPI) networks. In comprehensive benchmarks, iDCF achieves top-tier performance, consistently ranking among state-of-the-art methods in accuracy and robustness. iDCF integrates the SHapley Additive exPlanations (SHAP) framework, bridging the gap between computational inference and biological intuition. The model's decision logic is governed by established biological mechanisms rather than spurious statistical correlations, validating its reliability. Validations across clinical contexts, including Alzheimer's disease, ovarian cancer, and diabetes, demonstrate iDCF's ability to recover disease-relevant cellular dynamics. iDCF offers a high-performance, interpretable, and biologically grounded tool for deconvolving cell-type proportions, facilitating deeper insights into tissue heterogeneity in health and disease.
Additional Links: PMID-42658881
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42658881,
year = {2026},
author = {Guo, H and Wu, T and Wang, W and Jiang, Y and Li, G and Nie, L and Jia, Y and Quan, L and Huang, M and Lyu, Q},
title = {iDCF: Interpretable deconvolution of cell fractions via biologically-informed deep learning using scRNA-seq data.},
journal = {PLoS computational biology},
volume = {22},
number = {8},
pages = {e1014727},
doi = {10.1371/journal.pcbi.1014727},
pmid = {42658881},
issn = {1553-7358},
abstract = {Precise resolution of cellular heterogeneity within complex tissues is fundamental to deciphering disease etiologies from bulk transcriptomic profiles. While computational deconvolution offers a scalable alternative, current deep learning methods predominantly operate as "black boxes," neglecting the structural constraints of biological laws. This reliance on purely data-driven feature extraction often yields biologically incoherent predictions and limited mechanistic interpretability. iDCF (Interpretable Deconvolution of Cell Fractions) is a novel framework that enforces biological topology onto deep neural networks. The iDCF architecture employs a dual-stream design, synergizing a standard deep network with a knowledge-based sparse neural network (KSNN) explicitly masked by pathway definitions and protein-protein interaction (PPI) networks. In comprehensive benchmarks, iDCF achieves top-tier performance, consistently ranking among state-of-the-art methods in accuracy and robustness. iDCF integrates the SHapley Additive exPlanations (SHAP) framework, bridging the gap between computational inference and biological intuition. The model's decision logic is governed by established biological mechanisms rather than spurious statistical correlations, validating its reliability. Validations across clinical contexts, including Alzheimer's disease, ovarian cancer, and diabetes, demonstrate iDCF's ability to recover disease-relevant cellular dynamics. iDCF offers a high-performance, interpretable, and biologically grounded tool for deconvolving cell-type proportions, facilitating deeper insights into tissue heterogeneity in health and disease.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Lesion-Level Subtypes of White Matter Hyperintensity Evolution Beyond Spatial Location.
Neurology, 107(6):e218472.
BACKGROUND AND OBJECTIVES: White matter hyperintensities (WMHs) are common neuroimaging markers of cerebrovascular pathology in aging and neurodegeneration. Despite their clinical relevance, WMH are typically quantified using global burden measures that assume a relatively homogeneous pathologic process. However, growing evidence suggests substantial biological heterogeneity across lesions. We aimed to identify lesion-level WMH subtypes beyond anatomic location and evaluate their associations with neurodegeneration and vascular risk.
METHODS: We conducted a longitudinal observational study analyzing 3224 MRI scans from 403 participants spanning cognitively normal aging, mild cognitive impairment, Alzheimer, and Parkinson disease. Imaging at baseline and 2-year follow-up included structural, diffusion, and resting-state MRI. A total of 2107 WMH lesions were identified, and lesion-wise longitudinal changes were used to derive subtypes using unsupervised clustering. Associations with neurodegeneration and vascular risk factors were assessed using multivariable models with false discovery rate correction.
RESULTS: Three lesion subtypes (L1-L3) were identified, frequently coexisting within the same individual. L1 lesions were the most prevalent (48.1%), predominated in cognitively normal individuals, and exhibited relatively stable trajectories without association with brain atrophy. L2 lesions represented a less frequent (11.3%) unstable subtype associated with weight gain (odds ratio [OR] 1.33, 95% CI 1.22-1.45; pFDR ≤ 0.001), suggesting metabolic vulnerability. L3 lesions (40.6%) represented an unstable subtype associated with brain atrophy (β = -0.11, 95% CI -0.16 to -0.05; pFDR < 0.001), older age (OR 1.15, 95% CI 1.07-1.23; pFDR < 0.001), and vascular risk reflected by pulse pressure changes (OR 1.09, 95% CI 1.03-1.15; pFDR = 0.006). Global WMH burden was no longer associated with brain atrophy after accounting for L3 lesion burden. Clustering robustness was supported by sensitivity analyses excluding anatomical location and by external validation in an independent cohort reproducing the main atrophy-related findings.
DISCUSSION: WMH are not a homogeneous entity but comprise biologically distinct lesion subtypes with differential neurobiological and clinical significance. Lesion composition may therefore offer a more informative framework than global WMH burden for understanding cerebrovascular contributions to aging and neurodegeneration, with potential implications for risk stratification, clinical interpretation, and targeted interventions.
Additional Links: PMID-42659615
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42659615,
year = {2026},
author = {Gonzalez-Gomez, R and Tagliazuchi, E and Campo, CG and Medel, V and Bennett, DA and Iturria-Medina, Y},
title = {Lesion-Level Subtypes of White Matter Hyperintensity Evolution Beyond Spatial Location.},
journal = {Neurology},
volume = {107},
number = {6},
pages = {e218472},
doi = {10.1212/WNL.0000000000218472},
pmid = {42659615},
issn = {1526-632X},
mesh = {Humans ; Female ; *White Matter/pathology/diagnostic imaging ; Male ; Longitudinal Studies ; Aged ; *Aging/pathology ; Magnetic Resonance Imaging ; *Cognitive Dysfunction/diagnostic imaging/pathology ; *Brain/pathology/diagnostic imaging ; *Parkinson Disease/diagnostic imaging/pathology ; *Alzheimer Disease/diagnostic imaging/pathology ; Aged, 80 and over ; },
abstract = {BACKGROUND AND OBJECTIVES: White matter hyperintensities (WMHs) are common neuroimaging markers of cerebrovascular pathology in aging and neurodegeneration. Despite their clinical relevance, WMH are typically quantified using global burden measures that assume a relatively homogeneous pathologic process. However, growing evidence suggests substantial biological heterogeneity across lesions. We aimed to identify lesion-level WMH subtypes beyond anatomic location and evaluate their associations with neurodegeneration and vascular risk.
METHODS: We conducted a longitudinal observational study analyzing 3224 MRI scans from 403 participants spanning cognitively normal aging, mild cognitive impairment, Alzheimer, and Parkinson disease. Imaging at baseline and 2-year follow-up included structural, diffusion, and resting-state MRI. A total of 2107 WMH lesions were identified, and lesion-wise longitudinal changes were used to derive subtypes using unsupervised clustering. Associations with neurodegeneration and vascular risk factors were assessed using multivariable models with false discovery rate correction.
RESULTS: Three lesion subtypes (L1-L3) were identified, frequently coexisting within the same individual. L1 lesions were the most prevalent (48.1%), predominated in cognitively normal individuals, and exhibited relatively stable trajectories without association with brain atrophy. L2 lesions represented a less frequent (11.3%) unstable subtype associated with weight gain (odds ratio [OR] 1.33, 95% CI 1.22-1.45; pFDR ≤ 0.001), suggesting metabolic vulnerability. L3 lesions (40.6%) represented an unstable subtype associated with brain atrophy (β = -0.11, 95% CI -0.16 to -0.05; pFDR < 0.001), older age (OR 1.15, 95% CI 1.07-1.23; pFDR < 0.001), and vascular risk reflected by pulse pressure changes (OR 1.09, 95% CI 1.03-1.15; pFDR = 0.006). Global WMH burden was no longer associated with brain atrophy after accounting for L3 lesion burden. Clustering robustness was supported by sensitivity analyses excluding anatomical location and by external validation in an independent cohort reproducing the main atrophy-related findings.
DISCUSSION: WMH are not a homogeneous entity but comprise biologically distinct lesion subtypes with differential neurobiological and clinical significance. Lesion composition may therefore offer a more informative framework than global WMH burden for understanding cerebrovascular contributions to aging and neurodegeneration, with potential implications for risk stratification, clinical interpretation, and targeted interventions.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
Female
*White Matter/pathology/diagnostic imaging
Male
Longitudinal Studies
Aged
*Aging/pathology
Magnetic Resonance Imaging
*Cognitive Dysfunction/diagnostic imaging/pathology
*Brain/pathology/diagnostic imaging
*Parkinson Disease/diagnostic imaging/pathology
*Alzheimer Disease/diagnostic imaging/pathology
Aged, 80 and over
RevDate: 2026-08-27
Input-output curves demonstrate motor cortex hyperexcitability associated with cognitive impairment in Alzheimer's disease.
Neurobiology of aging, 168:147-158 pii:S0197-4580(26)00143-0 [Epub ahead of print].
Recent studies suggest that cortical hyperexcitability in Alzheimer's disease (AD) may accelerate disease progression. However, the field lacks validated non-invasive methods to assay excitability in humans. In this study we used transcranial magnetic stimulation with electromyography to investigate mechanisms of motor cortical excitability in 63 biomarker-positive early-AD (ranging from mild cognitive impairment to mild dementia) participants and 72 cognitively unimpaired age-matched adults (CU). Single-pulse stimulation was applied to motor cortex to record resting motor thresholds (rMT) and motor-evoked potentials. An Input-Output curve was generated by delivering 10 pulses each at eight different intensities of maximum stimulator output (%MSO). Linear models or equivalent non-parametric tests 1) compared excitability metrics between groups, 2) tested correlations with cognition (mini-mental state exam, MMSE; Alzheimer's disease assessment scale-cognitive, ADAS-Cog), and 3) tested the impact of APOE4. Results show that early-AD participants have increased motor cortical excitability than CU, with lower rMT (p < 0.001), lower Input-Output curve Inflection Point (p = 0.007), and higher Dynamic Range (p = 0.035). An analysis of the Input-Output curve adjusting for rMT showed larger responses in AD specifically in the 135-150% rMT range (p = 0.023). In AD, higher excitability was related to worse cognition (rMT: MMSE p = 0.008, Inflection Point: MMSE p = 0.030 and ADAS-Cog p = 0.041). There was no relationship between APOE4 and excitability. In conclusion, AD participants have increased motor cortical excitability, related to cognition. This is evident both at lower and higher stimulation intensities. TMS may provide a useful measure of target engagement for therapies aimed at preserving cognition or slowing decline in early-AD.
Additional Links: PMID-42659841
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42659841,
year = {2026},
author = {Cho, JH and Passera, B and Bertazzoli, G and Ozdemir, RA and Gomaa, B and Ferry, E and Pascual-Leone, A and Sperling, RA and Press, DZ and Shafi, MM and Fried, PJ and Buss, SS},
title = {Input-output curves demonstrate motor cortex hyperexcitability associated with cognitive impairment in Alzheimer's disease.},
journal = {Neurobiology of aging},
volume = {168},
number = {},
pages = {147-158},
doi = {10.1016/j.neurobiolaging.2026.08.002},
pmid = {42659841},
issn = {1558-1497},
abstract = {Recent studies suggest that cortical hyperexcitability in Alzheimer's disease (AD) may accelerate disease progression. However, the field lacks validated non-invasive methods to assay excitability in humans. In this study we used transcranial magnetic stimulation with electromyography to investigate mechanisms of motor cortical excitability in 63 biomarker-positive early-AD (ranging from mild cognitive impairment to mild dementia) participants and 72 cognitively unimpaired age-matched adults (CU). Single-pulse stimulation was applied to motor cortex to record resting motor thresholds (rMT) and motor-evoked potentials. An Input-Output curve was generated by delivering 10 pulses each at eight different intensities of maximum stimulator output (%MSO). Linear models or equivalent non-parametric tests 1) compared excitability metrics between groups, 2) tested correlations with cognition (mini-mental state exam, MMSE; Alzheimer's disease assessment scale-cognitive, ADAS-Cog), and 3) tested the impact of APOE4. Results show that early-AD participants have increased motor cortical excitability than CU, with lower rMT (p < 0.001), lower Input-Output curve Inflection Point (p = 0.007), and higher Dynamic Range (p = 0.035). An analysis of the Input-Output curve adjusting for rMT showed larger responses in AD specifically in the 135-150% rMT range (p = 0.023). In AD, higher excitability was related to worse cognition (rMT: MMSE p = 0.008, Inflection Point: MMSE p = 0.030 and ADAS-Cog p = 0.041). There was no relationship between APOE4 and excitability. In conclusion, AD participants have increased motor cortical excitability, related to cognition. This is evident both at lower and higher stimulation intensities. TMS may provide a useful measure of target engagement for therapies aimed at preserving cognition or slowing decline in early-AD.},
}
RevDate: 2026-08-27
High-intensity interval training versus mesenchymal stem cells in amyloid-β-induced Alzheimer's disease: comparative effects on cognitive function,hippocampal inflammation, oxidative balance, and BDNF.
Biochemical and biophysical research communications, 834:154463 pii:S0006-291X(26)01227-1 [Epub ahead of print].
Alzheimer's disease (AD) is a neurodegenerative disorder characterized by progressive cognitive decline. Although high-intensity interval training (HIIT) and mesenchymal stem cells (MSCs) have demonstrated neuroprotective effects, their comparative efficacy has not been compared. Male Wistar rats were assigned to five groups: Control, Vehicle, AD, AD + HIIT, and AD + MSCs. AD was induced by intracerebroventricular (ICV) injection of amyloid-beta (Aβ1-42). HIIT was performed for six weeks, and MSCs were injected via ICV. Learning and memory were evaluated using the Morris water maze (MWM), and CA1 cell number was assessed by Nissl staining. Levels of tumor necrosis factor-alpha (TNF-α), interleukin-10 (IL-10), malondialdehyde (MDA), total antioxidant capacity (TAC), superoxide dismutase (SOD), and brain-derived neurotrophic factor (BDNF) were measured in the hippocampus. Aβ1-42 impaired learning and memory and decreased CA1 cell number, whereas MSCs increased CA1 cell number compared with the AD group (P < 0.05). Aβ1-42 injection increased TNF-α and MDA (both P < 0.001) and decreased IL-10, BDNF (P < 0.01), SOD, and TAC (both P < 0.001). Both HIIT and MSCs improved cognitive performance and modulated biochemical markers compared with AD (P < 0.05). Compared with HIIT, MSCs produced greater reductions in TNF-α (P < 0.01) and greater increases in SOD and TAC (both P < 0.05). Despite these biochemical differences, no significant cognitive function difference was observed between HIIT and MSCs (P > 0.05). These findings suggest that, within the conditions of this study, both HIIT and MSCs administration were associated with improved cognitive performance, with no significant difference in effectiveness between the two treatments. HIIT may therefore be a promising non-pharmacological intervention, but further research is needed to confirm its benefits.
Additional Links: PMID-42659862
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42659862,
year = {2026},
author = {Hosseini, MS and Saheli, M and RajiZadeh, MA and Nematollahi-Mahani, SN and Joushi, S and Gaeini, A and Khoramipour, K and Sheibani, V},
title = {High-intensity interval training versus mesenchymal stem cells in amyloid-β-induced Alzheimer's disease: comparative effects on cognitive function,hippocampal inflammation, oxidative balance, and BDNF.},
journal = {Biochemical and biophysical research communications},
volume = {834},
number = {},
pages = {154463},
doi = {10.1016/j.bbrc.2026.154463},
pmid = {42659862},
issn = {1090-2104},
abstract = {Alzheimer's disease (AD) is a neurodegenerative disorder characterized by progressive cognitive decline. Although high-intensity interval training (HIIT) and mesenchymal stem cells (MSCs) have demonstrated neuroprotective effects, their comparative efficacy has not been compared. Male Wistar rats were assigned to five groups: Control, Vehicle, AD, AD + HIIT, and AD + MSCs. AD was induced by intracerebroventricular (ICV) injection of amyloid-beta (Aβ1-42). HIIT was performed for six weeks, and MSCs were injected via ICV. Learning and memory were evaluated using the Morris water maze (MWM), and CA1 cell number was assessed by Nissl staining. Levels of tumor necrosis factor-alpha (TNF-α), interleukin-10 (IL-10), malondialdehyde (MDA), total antioxidant capacity (TAC), superoxide dismutase (SOD), and brain-derived neurotrophic factor (BDNF) were measured in the hippocampus. Aβ1-42 impaired learning and memory and decreased CA1 cell number, whereas MSCs increased CA1 cell number compared with the AD group (P < 0.05). Aβ1-42 injection increased TNF-α and MDA (both P < 0.001) and decreased IL-10, BDNF (P < 0.01), SOD, and TAC (both P < 0.001). Both HIIT and MSCs improved cognitive performance and modulated biochemical markers compared with AD (P < 0.05). Compared with HIIT, MSCs produced greater reductions in TNF-α (P < 0.01) and greater increases in SOD and TAC (both P < 0.05). Despite these biochemical differences, no significant cognitive function difference was observed between HIIT and MSCs (P > 0.05). These findings suggest that, within the conditions of this study, both HIIT and MSCs administration were associated with improved cognitive performance, with no significant difference in effectiveness between the two treatments. HIIT may therefore be a promising non-pharmacological intervention, but further research is needed to confirm its benefits.},
}
RevDate: 2026-08-27
The truncated Tau fragment 315-441 produced by Caspase-2 translocates to the nucleus and alters the proteome of neuroblastoma cells.
European journal of cell biology, 105(4):151567 pii:S0171-9335(26)00038-5 [Epub ahead of print].
Alzheimer's disease (AD) symptoms arise from significant loss of neurons in the hippocampal region and the entorhinal cortex. This neuronal death is primarily caused by the abnormal aggregation of Tau protein into paired helical filaments within the somatodendritic compartment. However, the molecular mechanisms underlying this toxicity remain unclear. One contributing factor is the proteolysis of Tau, mainly mediated by Caspase-3. This abnormal post-translational modification promotes Tau aggregation and neuronal toxicity in the brains affected by AD, as well as in vitro cultured cells. Additionally, a new proteolytic site at Asp[314], produced by Caspase-2, has been identified in AD. However, little is known about the pathological role of the Tau fragments generated by Caspase-2, specifically Tau 1-314 and Tau 315-441. In this study, we transiently transfected neuroblastoma cells with plasmids encoding either Tau 1-314 or Tau 315-441 and analyzed changes in cell morphology as well as toxicity using immunofluorescence and confocal microscopy. Furthermore, we aimed to examine the physiological effects of truncated Tau expression on the overall proteome of the transfected neuroblastoma cells through mass spectrometry analysis. Our findings indicate that the Caspase-2-generated truncated Tau fragments exhibit distinct intracellular distributions, leading to the abnormal transport of Tau 315-441 into the nuclear compartment accompanied by the abnormal downregulation of functional and structural nuclear proteins. The generation of Caspase-2-derived truncated Tau fragments may represent an additional mechanism of neuronal toxicity occurring at early stages of the disease, prior to the filamentous aggregation of the Tau protein.
Additional Links: PMID-42659873
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42659873,
year = {2026},
author = {López-Aviña, YI and Ríos-Castro, E and Rodríguez-Cruz, F and Mendoza-Franco, G and Vega, BC and Boucard, AA and Luna-Arias, JP and Basurto-Islas, G and García-Sierra, F},
title = {The truncated Tau fragment 315-441 produced by Caspase-2 translocates to the nucleus and alters the proteome of neuroblastoma cells.},
journal = {European journal of cell biology},
volume = {105},
number = {4},
pages = {151567},
doi = {10.1016/j.ejcb.2026.151567},
pmid = {42659873},
issn = {1618-1298},
abstract = {Alzheimer's disease (AD) symptoms arise from significant loss of neurons in the hippocampal region and the entorhinal cortex. This neuronal death is primarily caused by the abnormal aggregation of Tau protein into paired helical filaments within the somatodendritic compartment. However, the molecular mechanisms underlying this toxicity remain unclear. One contributing factor is the proteolysis of Tau, mainly mediated by Caspase-3. This abnormal post-translational modification promotes Tau aggregation and neuronal toxicity in the brains affected by AD, as well as in vitro cultured cells. Additionally, a new proteolytic site at Asp[314], produced by Caspase-2, has been identified in AD. However, little is known about the pathological role of the Tau fragments generated by Caspase-2, specifically Tau 1-314 and Tau 315-441. In this study, we transiently transfected neuroblastoma cells with plasmids encoding either Tau 1-314 or Tau 315-441 and analyzed changes in cell morphology as well as toxicity using immunofluorescence and confocal microscopy. Furthermore, we aimed to examine the physiological effects of truncated Tau expression on the overall proteome of the transfected neuroblastoma cells through mass spectrometry analysis. Our findings indicate that the Caspase-2-generated truncated Tau fragments exhibit distinct intracellular distributions, leading to the abnormal transport of Tau 315-441 into the nuclear compartment accompanied by the abnormal downregulation of functional and structural nuclear proteins. The generation of Caspase-2-derived truncated Tau fragments may represent an additional mechanism of neuronal toxicity occurring at early stages of the disease, prior to the filamentous aggregation of the Tau protein.},
}
RevDate: 2026-08-27
The relationship between positive psychological capital, self-care ability, and quality of life in patients with mild cognitive impairment: A cross-sectional study.
Geriatric nursing (New York, N.Y.), 73:104314 pii:S0197-4572(26)00519-7 [Epub ahead of print].
BACKGROUND: Mild cognitive impairment (MCI) severely impairs elders' quality of life. Positive psychological capital (PsyCap) and self-care ability are key protective factors, but most existing studies merely conduct linear analyses using total scale scores, ignoring multi-dimensional interactions. This study explored their internal associations to guide targeted clinical interventions.
METHOD: This cross-sectional observational study was carried out from November 2025 to January 2026 at a Chinese tertiary hospital. We recruited elderly outpatients with MCI through convenience sampling, and collected data via on-site face-to-face questionnaires. Three standardized scales were applied: the Positive Psychological Capital Scale (PPC), Self-care Ability Scale for the Elderly (SASE), and Quality of Life in Alzheimer's Disease (QOL-AD). No family members were enrolled. Network analysis was used to detect central and bridge nodes and their links with quality of life.
RESULTS: A total of 210 valid questionnaires were collected, with a mean score of 109.33 ± 16.57 on the PsyCap scale and a mean score of 59.88 ± 5.20 on the SASE scale. "Hope" acted as the top core node. "Hope" and "environment" serve as cross-scale bridge nodes. "Hope" correlated most strongly with life satisfaction, and stability tests proved the network's good reliability.
CONCLUSION: This study revealed multi-level psychological mechanisms in MCI patients and identified hope and environment as key bridge nodes boosting PsyCap and self-care simultaneously. Customised interventions can improve MCI patients' well-being. At the same time, this study provides clinical staff with a framework for dual-track interventions aimed at fostering hope and optimising the home environment.
Additional Links: PMID-42659996
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42659996,
year = {2026},
author = {Han, S and Zhu, C and Ding, Y and Kudelati, Z and Wang, H},
title = {The relationship between positive psychological capital, self-care ability, and quality of life in patients with mild cognitive impairment: A cross-sectional study.},
journal = {Geriatric nursing (New York, N.Y.)},
volume = {73},
number = {},
pages = {104314},
doi = {10.1016/j.gerinurse.2026.104314},
pmid = {42659996},
issn = {1528-3984},
abstract = {BACKGROUND: Mild cognitive impairment (MCI) severely impairs elders' quality of life. Positive psychological capital (PsyCap) and self-care ability are key protective factors, but most existing studies merely conduct linear analyses using total scale scores, ignoring multi-dimensional interactions. This study explored their internal associations to guide targeted clinical interventions.
METHOD: This cross-sectional observational study was carried out from November 2025 to January 2026 at a Chinese tertiary hospital. We recruited elderly outpatients with MCI through convenience sampling, and collected data via on-site face-to-face questionnaires. Three standardized scales were applied: the Positive Psychological Capital Scale (PPC), Self-care Ability Scale for the Elderly (SASE), and Quality of Life in Alzheimer's Disease (QOL-AD). No family members were enrolled. Network analysis was used to detect central and bridge nodes and their links with quality of life.
RESULTS: A total of 210 valid questionnaires were collected, with a mean score of 109.33 ± 16.57 on the PsyCap scale and a mean score of 59.88 ± 5.20 on the SASE scale. "Hope" acted as the top core node. "Hope" and "environment" serve as cross-scale bridge nodes. "Hope" correlated most strongly with life satisfaction, and stability tests proved the network's good reliability.
CONCLUSION: This study revealed multi-level psychological mechanisms in MCI patients and identified hope and environment as key bridge nodes boosting PsyCap and self-care simultaneously. Customised interventions can improve MCI patients' well-being. At the same time, this study provides clinical staff with a framework for dual-track interventions aimed at fostering hope and optimising the home environment.},
}
RevDate: 2026-08-27
Evaluating the virtual dementia tour with undergraduate nursing students using the RE-AIM framework.
Geriatric nursing (New York, N.Y.), 73:104298 pii:S0197-4572(26)00503-3 [Epub ahead of print].
BACKGROUND: As the U.S. population ages, the incidence of Alzheimer's and dementia is expected to increase to more than nine million Americans by 2030. The virtual dementia tour (VDT®) simulation program is an innovative educational strategy used to improve nursing students' perception of dementia experience thereby enhancing patient centered care.
SAMPLE: 143 Nursing students in an accelerated BSN program.
METHODS: Conducted as a pilot, VDT was delivered to undergraduate nursing students using the RE-AIM Framework. A pre/post survey examines student's experience of the care needs of patients with Dementia.
RESULTS: The results indicated a significant difference from pre-to-post response ranging (p-value <2,2e-16 to 5.84e-16) and the median difference estimated to be 2.99, with 95% confidence interval.
CONCLUSION: This feasibility study highlights VDT® is a valuable training method to support dementia care education. Results inform phase 2 of the future delivery of the VDT® in community and public health agencies.
Additional Links: PMID-42659997
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42659997,
year = {2026},
author = {DiLeone, C and Maruca, AT},
title = {Evaluating the virtual dementia tour with undergraduate nursing students using the RE-AIM framework.},
journal = {Geriatric nursing (New York, N.Y.)},
volume = {73},
number = {},
pages = {104298},
doi = {10.1016/j.gerinurse.2026.104298},
pmid = {42659997},
issn = {1528-3984},
abstract = {BACKGROUND: As the U.S. population ages, the incidence of Alzheimer's and dementia is expected to increase to more than nine million Americans by 2030. The virtual dementia tour (VDT®) simulation program is an innovative educational strategy used to improve nursing students' perception of dementia experience thereby enhancing patient centered care.
SAMPLE: 143 Nursing students in an accelerated BSN program.
METHODS: Conducted as a pilot, VDT was delivered to undergraduate nursing students using the RE-AIM Framework. A pre/post survey examines student's experience of the care needs of patients with Dementia.
RESULTS: The results indicated a significant difference from pre-to-post response ranging (p-value <2,2e-16 to 5.84e-16) and the median difference estimated to be 2.99, with 95% confidence interval.
CONCLUSION: This feasibility study highlights VDT® is a valuable training method to support dementia care education. Results inform phase 2 of the future delivery of the VDT® in community and public health agencies.},
}
RevDate: 2026-08-27
Microtubule and cytoskeletal Destabilization gene expression in the brain vasculature after experimental diffuse traumatic brain Injury, Implications for neurodegenerative disease later in life.
Neuroscience letters pii:S0304-3940(26)00211-9 [Epub ahead of print].
Neurodegenerative disease risk following traumatic brain injury (TBI) has been associated with vascular abnormalities and brain inflammation. However, the extent to which diffuse TBI with at least one persistent neurological deficit contributes to chronic neurodegeneration is not well understood. In this study, we investigated the impact of experimental diffuse TBI on the cerebral vasculature in the CA1 region of the hippocampus, which is vulnerable to multiple cognitive-associated neurodegenerative diseases. At the 6-month post-injury timepoint, a timepoint with known cognitive impairment, we employed laser capture microdissection (LCM) to isolate parenchymal blood vessels from the CA1 subregion of the hippocampus in Sprague-Dawley rats subjected to either sham or midline fluid percussion injury. LCM vessels were processed for RNA sequencing and differentially expressed gene (DEG) analyses (DESeq2) were performed, followed by pathway enrichment analysis using genes with a log2FC > 0 and p-value < 0.05. A subset of differentially expressed genes (9%) were associated with microtubule/cytoskeletal organization, including Plectin (PLEC) gene (Log2FC=+9.5, p < 0.0001), a cytoskeletal protein that maintains tissue integrity and whose overexpression was recently identified as a risk factor for Alzheimer's disease (AD). Pathway analyses showed the most upregulated and downregulated biological pathways were involved in neurodegeneration-multiple-diseases (Gene count 11, p-adjusted < 0.01) and AD (Gene count 8, p-adjusted < 0.04). Understanding the complex interplay between TBI, the cerebral vasculature, and neurodegeneration risk is critical for prognosis and interventions that mitigate the long-term effects of brain injury and improve outcomes for patients.
Additional Links: PMID-42660275
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42660275,
year = {2026},
author = {Mastroeni, DF and Nolz, J and Zhang, Y and Griffiths, DR and Louangprasert, KA and Emerson, H and Karamanova, N and Law, LM and Park, J and Migrino, RQ and Lifshitz, J},
title = {Microtubule and cytoskeletal Destabilization gene expression in the brain vasculature after experimental diffuse traumatic brain Injury, Implications for neurodegenerative disease later in life.},
journal = {Neuroscience letters},
volume = {},
number = {},
pages = {138711},
doi = {10.1016/j.neulet.2026.138711},
pmid = {42660275},
issn = {1872-7972},
abstract = {Neurodegenerative disease risk following traumatic brain injury (TBI) has been associated with vascular abnormalities and brain inflammation. However, the extent to which diffuse TBI with at least one persistent neurological deficit contributes to chronic neurodegeneration is not well understood. In this study, we investigated the impact of experimental diffuse TBI on the cerebral vasculature in the CA1 region of the hippocampus, which is vulnerable to multiple cognitive-associated neurodegenerative diseases. At the 6-month post-injury timepoint, a timepoint with known cognitive impairment, we employed laser capture microdissection (LCM) to isolate parenchymal blood vessels from the CA1 subregion of the hippocampus in Sprague-Dawley rats subjected to either sham or midline fluid percussion injury. LCM vessels were processed for RNA sequencing and differentially expressed gene (DEG) analyses (DESeq2) were performed, followed by pathway enrichment analysis using genes with a log2FC > 0 and p-value < 0.05. A subset of differentially expressed genes (9%) were associated with microtubule/cytoskeletal organization, including Plectin (PLEC) gene (Log2FC=+9.5, p < 0.0001), a cytoskeletal protein that maintains tissue integrity and whose overexpression was recently identified as a risk factor for Alzheimer's disease (AD). Pathway analyses showed the most upregulated and downregulated biological pathways were involved in neurodegeneration-multiple-diseases (Gene count 11, p-adjusted < 0.01) and AD (Gene count 8, p-adjusted < 0.04). Understanding the complex interplay between TBI, the cerebral vasculature, and neurodegeneration risk is critical for prognosis and interventions that mitigate the long-term effects of brain injury and improve outcomes for patients.},
}
RevDate: 2026-08-27
Apolipoprotein E lipidation, rather than isoform identity, determines amyloid-β binding and astrocyte clearance.
The Journal of biological chemistry pii:S0021-9258(26)02366-5 [Epub ahead of print].
Inherited variations in the Apolipoprotein E (APOE) gene are the largest genetic determinant for late-onset Alzheimer's disease, with the APOEε4 allele conferring the highest risk. While APOE was shown to modulate amyloid beta (Aβ) pathology in a genotype-specific manner (APOEε4>APOEε3>APOEε2), it remains an open question whether these differences are due directly to isoform-specific interactions between ApoE and Aβ or indirect effects on Aβ clearance. To disentangle how single ApoE mutations confer vastly different effects on Aβ pathology, we investigated how both the ApoE isoform and lipidation modulate its binding to Aβ species, and its effect on Aβ uptake and cytotoxicity in human astrocytes. We found that ApoE lipidation, not isoform, has the biggest impact on its interaction with Aβ, on the uptake of Aβ by astrocytes, and on Aβ-induced cytotoxicity. Specifically, unlipidated ApoE preferentially interacts with Aβ oligomers and fibrils, which substantially inhibits their uptake by astrocytes. Conversely, lipidated ApoE showed no interaction with Aβ oligomers and had a reduced ability to inhibit Aβ uptake. Our observations suggest that previously reported ApoE isoform-specific differences in Aβ oligomer levels are not driven by intrinsic sequence-specific differences in the affinity between ApoE and Aβ, but potentially by isoform-specific differences in ApoE lipidation in the brain. We propose that the impaired lipidation of ApoE4 in the brain increases levels of unlipidated ApoE, which then bind toxic Aβ oligomers and reduce their clearance by astrocytes. Such a mechanism underscores the therapeutic potential of interventions aimed at increasing ApoE lipidation.
Additional Links: PMID-42660456
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42660456,
year = {2026},
author = {Nurmakova, K and Gomes, GW and Levine, ZA},
title = {Apolipoprotein E lipidation, rather than isoform identity, determines amyloid-β binding and astrocyte clearance.},
journal = {The Journal of biological chemistry},
volume = {},
number = {},
pages = {113494},
doi = {10.1016/j.jbc.2026.113494},
pmid = {42660456},
issn = {1083-351X},
abstract = {Inherited variations in the Apolipoprotein E (APOE) gene are the largest genetic determinant for late-onset Alzheimer's disease, with the APOEε4 allele conferring the highest risk. While APOE was shown to modulate amyloid beta (Aβ) pathology in a genotype-specific manner (APOEε4>APOEε3>APOEε2), it remains an open question whether these differences are due directly to isoform-specific interactions between ApoE and Aβ or indirect effects on Aβ clearance. To disentangle how single ApoE mutations confer vastly different effects on Aβ pathology, we investigated how both the ApoE isoform and lipidation modulate its binding to Aβ species, and its effect on Aβ uptake and cytotoxicity in human astrocytes. We found that ApoE lipidation, not isoform, has the biggest impact on its interaction with Aβ, on the uptake of Aβ by astrocytes, and on Aβ-induced cytotoxicity. Specifically, unlipidated ApoE preferentially interacts with Aβ oligomers and fibrils, which substantially inhibits their uptake by astrocytes. Conversely, lipidated ApoE showed no interaction with Aβ oligomers and had a reduced ability to inhibit Aβ uptake. Our observations suggest that previously reported ApoE isoform-specific differences in Aβ oligomer levels are not driven by intrinsic sequence-specific differences in the affinity between ApoE and Aβ, but potentially by isoform-specific differences in ApoE lipidation in the brain. We propose that the impaired lipidation of ApoE4 in the brain increases levels of unlipidated ApoE, which then bind toxic Aβ oligomers and reduce their clearance by astrocytes. Such a mechanism underscores the therapeutic potential of interventions aimed at increasing ApoE lipidation.},
}
RevDate: 2026-08-27
Temporal progression of auditory brainstem dysfunction and behavioral phenotypes in mouse models of tauopathy.
The Journal of neuroscience : the official journal of the Society for Neuroscience pii:JNEUROSCI.0511-26.2026 [Epub ahead of print].
Cognitive decline in Alzheimer's disease and related dementias (AD/ADRD) frequently co-occurs with motor and sensory processing impairments. While auditory abnormalities were reported in beta-amyloid-based models before cognitive decline, the effects of tau pathology on auditory circuit function remain poorly understood. The PS19 mouse model expressing the P301S tau mutation exhibits tau pathology associated with frontotemporal dementia. When combined with the humanized ApoE ɛ4 allele, these mice show accelerated tau accumulation and neurodegeneration. We investigated the temporal progression of auditory and behavioral deficits in PS19 and ApoE4/PS19 mice of either sex at 3 and 7 months. Auditory processing was assessed using auditory brainstem response (ABR) recordings, while anxiety-like and motor behaviors were evaluated using the elevated plus maze (EPM) and rotarod assays. PS19 mice exhibited auditory pathway dysfunction at 3 months, characterized by reduced and delayed neural responses to acoustic stimuli. These auditory deficits occurred without detectable behavioral changes in anxiety- or motor-related measures. By 7 months, cochlear-nucleus-derived ABR activity shifted from an initial reduction to elevation relative to controls, suggesting compensatory hyperexcitability. In contrast, ApoE4/PS19 mice showed reduced ABR amplitudes and shortened response latencies that persisted with age, accompanied by altered anxiety-like behavior and motor performance. Together, these results demonstrate that auditory pathway dysfunction may represent an early marker of tau pathology preceding behavioral impairment. The divergent temporal patterns of ABR alterations across genotypes suggest that genetic context, particularly ApoE4, modulates the progression of tau-driven circuit dysfunction, highlighting ABR as a potential noninvasive biomarker for early tau-related neurodegenerative disease.Significance Statement Early detection of Alzheimer's disease and related dementias remains a major clinical challenge. This study identifies auditory pathway dysfunction as an early, measurable marker of tau pathology, preceding detectable behavioral impairments in mouse models with abnormal auditory brainstem responses (ABRs) appeared months before anxiety or motor behavioral changes. Genetic background also significantly influenced disease progression, with the ApoE4 allele altering both the timing and nature of auditory and behavioral phenotypes. Together, these findings demonstrate that tau pathology disrupts auditory processing at early disease stages and suggest that ABR-based measures as sensitive, non-invasive approach for early detection and monitoring of tau-related neurodegeneration.
Additional Links: PMID-42660657
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42660657,
year = {2026},
author = {Nguyen, AM and Lo, H and Fields, J and Cramer, KS and Zeng, FG and Dong, W and Xu, X},
title = {Temporal progression of auditory brainstem dysfunction and behavioral phenotypes in mouse models of tauopathy.},
journal = {The Journal of neuroscience : the official journal of the Society for Neuroscience},
volume = {},
number = {},
pages = {},
doi = {10.1523/JNEUROSCI.0511-26.2026},
pmid = {42660657},
issn = {1529-2401},
abstract = {Cognitive decline in Alzheimer's disease and related dementias (AD/ADRD) frequently co-occurs with motor and sensory processing impairments. While auditory abnormalities were reported in beta-amyloid-based models before cognitive decline, the effects of tau pathology on auditory circuit function remain poorly understood. The PS19 mouse model expressing the P301S tau mutation exhibits tau pathology associated with frontotemporal dementia. When combined with the humanized ApoE ɛ4 allele, these mice show accelerated tau accumulation and neurodegeneration. We investigated the temporal progression of auditory and behavioral deficits in PS19 and ApoE4/PS19 mice of either sex at 3 and 7 months. Auditory processing was assessed using auditory brainstem response (ABR) recordings, while anxiety-like and motor behaviors were evaluated using the elevated plus maze (EPM) and rotarod assays. PS19 mice exhibited auditory pathway dysfunction at 3 months, characterized by reduced and delayed neural responses to acoustic stimuli. These auditory deficits occurred without detectable behavioral changes in anxiety- or motor-related measures. By 7 months, cochlear-nucleus-derived ABR activity shifted from an initial reduction to elevation relative to controls, suggesting compensatory hyperexcitability. In contrast, ApoE4/PS19 mice showed reduced ABR amplitudes and shortened response latencies that persisted with age, accompanied by altered anxiety-like behavior and motor performance. Together, these results demonstrate that auditory pathway dysfunction may represent an early marker of tau pathology preceding behavioral impairment. The divergent temporal patterns of ABR alterations across genotypes suggest that genetic context, particularly ApoE4, modulates the progression of tau-driven circuit dysfunction, highlighting ABR as a potential noninvasive biomarker for early tau-related neurodegenerative disease.Significance Statement Early detection of Alzheimer's disease and related dementias remains a major clinical challenge. This study identifies auditory pathway dysfunction as an early, measurable marker of tau pathology, preceding detectable behavioral impairments in mouse models with abnormal auditory brainstem responses (ABRs) appeared months before anxiety or motor behavioral changes. Genetic background also significantly influenced disease progression, with the ApoE4 allele altering both the timing and nature of auditory and behavioral phenotypes. Together, these findings demonstrate that tau pathology disrupts auditory processing at early disease stages and suggest that ABR-based measures as sensitive, non-invasive approach for early detection and monitoring of tau-related neurodegeneration.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Traditional Chinese Herbal Formula YA3D3 Ameliorates Alzheimer's Disease-Like Pathology and Cognitive Impairment in APP/PS1 Transgenic Mice.
Zhongguo yi xue ke xue yuan xue bao. Acta Academiae Medicinae Sinicae, 48(4):602-614.
Objective To evaluate the effects of the traditional Chinese herbal formula YA3D3 on cognitive impairment and cerebral β-amyloid (Aβ) deposition in APP/PS1 transgenic mice and to determine whether these effects are mediated by up-regulation of the autophagy-related gene 14 (ATG14). Methods Network pharmacology was employed to predict YA3D3 targets.Total antioxidant capacity and hydroxyl free radical scavenging activity were measured in vitro.BV2 microglial cells were infected with short hairpin RNA (shRNA) lentivirus targeting ATG14 (designated as sh-ATG14) and then treated with 0.5 mg/mL of either water-extract (YA3D3-HF) or fermented (YA3D3-MHF) preparation for 24 h.The expression levels of ATG14 and downstream ATG16L1 were assessed by qPCR and Western blot.Sixty-four 3-month-old male APP/PS1 mice were randomly allocated to eight groups (n=8):APP/PS1 model,donepezil,low-,medium-,and high-dose YA3D3-HF,and low-,medium-,and high-dose YA3D3-MHF.All the drugs were administered ad libitum in drinking water for 90 days.Spatial learning and memory were evaluated through the Morris water maze.Cerebral Aβ deposition was quantified by immunofluorescence.Autophagy-related gene expression in the brain tissue was analyzed by qPCR. Results Network pharmacology indicated significant enrichment of YA3D3 targets in autophagy and phosphatidylinositol 3-kinase/protein kinase B signaling pathways.YA3D3-MHF showed stronger antioxidant activity than YA3D3-HF in vitro (P<0.001).In BV2 cells,both preparations reversed ATG14 knock-down-induced down-regulation in the expression of ATG14 and ATG16L1,with YA3D3-MHF being more potent (P=0.003).The animal experiment showed that all the YA3D3 groups exhibited shorter escape latency and more platform crossings than the APP/PS1 model group (all P<0.05),along with reduced Aβ fluorescence intensity (all P<0.001).The efficacy of high-dose YA3D3-MHF was similar to that of donepezil.qPCR confirmed that YA3D3 up-regulated the expression of ATG14 and modulated the expression of downstream autophagy-related genes in the brain tissue (all P<0.05). Conclusions The traditional Chinese herbal formula YA3D3 may up-regulate the expression of ATG14 to slow down Aβ deposition and ameliorate cognitive impairment in APP/PS1 mice,serving as a potential candidate for Alzheimer's disease intervention.It should be noted that this study has not directly verified the necessity of ATG14 in vivo,and the causal relationship between the in vivo therapeutic efficacy of YA3D3 and the up-regulation of ATG14 requires further confirmation.In addition,this study only verifies the expression regulation of autophagy-related molecules and does not confirm the enhancement of autophagy flux.
Additional Links: PMID-42660828
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42660828,
year = {2026},
author = {Yang, T and Ma, JR and Liang, SY and Zhang, YM and Guo, L and Li, WJ and Lü, YH},
title = {Traditional Chinese Herbal Formula YA3D3 Ameliorates Alzheimer's Disease-Like Pathology and Cognitive Impairment in APP/PS1 Transgenic Mice.},
journal = {Zhongguo yi xue ke xue yuan xue bao. Acta Academiae Medicinae Sinicae},
volume = {48},
number = {4},
pages = {602-614},
doi = {10.3881/j.issn.1000-503X.17127},
pmid = {42660828},
issn = {1000-503X},
mesh = {Animals ; *Drugs, Chinese Herbal/pharmacology ; *Alzheimer Disease/drug therapy/pathology ; Mice, Transgenic ; Mice ; Male ; *Cognitive Dysfunction/drug therapy ; Amyloid beta-Peptides/metabolism ; Disease Models, Animal ; Amyloid beta-Protein Precursor ; },
abstract = {Objective To evaluate the effects of the traditional Chinese herbal formula YA3D3 on cognitive impairment and cerebral β-amyloid (Aβ) deposition in APP/PS1 transgenic mice and to determine whether these effects are mediated by up-regulation of the autophagy-related gene 14 (ATG14). Methods Network pharmacology was employed to predict YA3D3 targets.Total antioxidant capacity and hydroxyl free radical scavenging activity were measured in vitro.BV2 microglial cells were infected with short hairpin RNA (shRNA) lentivirus targeting ATG14 (designated as sh-ATG14) and then treated with 0.5 mg/mL of either water-extract (YA3D3-HF) or fermented (YA3D3-MHF) preparation for 24 h.The expression levels of ATG14 and downstream ATG16L1 were assessed by qPCR and Western blot.Sixty-four 3-month-old male APP/PS1 mice were randomly allocated to eight groups (n=8):APP/PS1 model,donepezil,low-,medium-,and high-dose YA3D3-HF,and low-,medium-,and high-dose YA3D3-MHF.All the drugs were administered ad libitum in drinking water for 90 days.Spatial learning and memory were evaluated through the Morris water maze.Cerebral Aβ deposition was quantified by immunofluorescence.Autophagy-related gene expression in the brain tissue was analyzed by qPCR. Results Network pharmacology indicated significant enrichment of YA3D3 targets in autophagy and phosphatidylinositol 3-kinase/protein kinase B signaling pathways.YA3D3-MHF showed stronger antioxidant activity than YA3D3-HF in vitro (P<0.001).In BV2 cells,both preparations reversed ATG14 knock-down-induced down-regulation in the expression of ATG14 and ATG16L1,with YA3D3-MHF being more potent (P=0.003).The animal experiment showed that all the YA3D3 groups exhibited shorter escape latency and more platform crossings than the APP/PS1 model group (all P<0.05),along with reduced Aβ fluorescence intensity (all P<0.001).The efficacy of high-dose YA3D3-MHF was similar to that of donepezil.qPCR confirmed that YA3D3 up-regulated the expression of ATG14 and modulated the expression of downstream autophagy-related genes in the brain tissue (all P<0.05). Conclusions The traditional Chinese herbal formula YA3D3 may up-regulate the expression of ATG14 to slow down Aβ deposition and ameliorate cognitive impairment in APP/PS1 mice,serving as a potential candidate for Alzheimer's disease intervention.It should be noted that this study has not directly verified the necessity of ATG14 in vivo,and the causal relationship between the in vivo therapeutic efficacy of YA3D3 and the up-regulation of ATG14 requires further confirmation.In addition,this study only verifies the expression regulation of autophagy-related molecules and does not confirm the enhancement of autophagy flux.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Animals
*Drugs, Chinese Herbal/pharmacology
*Alzheimer Disease/drug therapy/pathology
Mice, Transgenic
Mice
Male
*Cognitive Dysfunction/drug therapy
Amyloid beta-Peptides/metabolism
Disease Models, Animal
Amyloid beta-Protein Precursor
RevDate: 2026-08-27
Prognostic value of Amyloid PET in Real-World Amnestic MCI: Influence of reader experience and interpretation method.
European journal of nuclear medicine and molecular imaging [Epub ahead of print].
PURPOSE: This study assessed the prognostic value and inter-/intra-observer reliability of three amyloid PET interpretation methods-conventional visual reading, assisted visual interpretation and standardized uptake value ratio (SUVR)-based quantification-for predicting conversion to Alzheimer's disease (AD).
METHODS: This retrospective longitudinal study included 145 patients with amnestic mild cognitive impairment who underwent amyloid PET and were followed for up to 8 years at a single memory clinic. Two certified nuclear medicine physicians performed structured visual reads and assisted visual interpretations. Semiquantitative SUVR thresholds validated in prior studies were applied as a third method. Inter- and intra-observer agreement was assessed using Cohen's kappa (κ). Cox regression models estimated the association of conversion to AD in PET-positive versus PET-negative patients for each method, adjusting for age, sex and education.
RESULTS: Inter-observer agreement was excellent for structured visual reading (κ = 0.877) and assisted visual interpretation (κ = 0.904). Intra-observer reliability was also high (κ = 0.891 for Reader 1; κ = 0.859 for Reader 2). Consensus agreement for the assisted method reached κ = 0.936. Amyloid PET positivity was strongly associated with progression to AD across all methods. Hazard ratios were highest for assisted visual interpretation (HR = 3.23, 95% CI 1.94-5.38, p < 0.0001), followed by SUVR quantification (HR = 2.19, 95% CI 1.55-3.10, p < 0.0001) and structured visual reading (HR = 1.83, 95% CI 1.10-3.06, p = 0.02).
CONCLUSION: Amyloid PET positivity consistently predicted conversion to AD regardless of interpretation method. Assisted visual and semiquantitative approaches showed numerically higher prognostic discrimination, while expert structured visual reading remained clinically reliable.
Additional Links: PMID-42661000
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661000,
year = {2026},
author = {Echeveste, B and Guillén, EF and Prieto, E and Hirschmüller, KCE and Riverol, M and Arbizu, J},
title = {Prognostic value of Amyloid PET in Real-World Amnestic MCI: Influence of reader experience and interpretation method.},
journal = {European journal of nuclear medicine and molecular imaging},
volume = {},
number = {},
pages = {},
pmid = {42661000},
issn = {1619-7089},
abstract = {PURPOSE: This study assessed the prognostic value and inter-/intra-observer reliability of three amyloid PET interpretation methods-conventional visual reading, assisted visual interpretation and standardized uptake value ratio (SUVR)-based quantification-for predicting conversion to Alzheimer's disease (AD).
METHODS: This retrospective longitudinal study included 145 patients with amnestic mild cognitive impairment who underwent amyloid PET and were followed for up to 8 years at a single memory clinic. Two certified nuclear medicine physicians performed structured visual reads and assisted visual interpretations. Semiquantitative SUVR thresholds validated in prior studies were applied as a third method. Inter- and intra-observer agreement was assessed using Cohen's kappa (κ). Cox regression models estimated the association of conversion to AD in PET-positive versus PET-negative patients for each method, adjusting for age, sex and education.
RESULTS: Inter-observer agreement was excellent for structured visual reading (κ = 0.877) and assisted visual interpretation (κ = 0.904). Intra-observer reliability was also high (κ = 0.891 for Reader 1; κ = 0.859 for Reader 2). Consensus agreement for the assisted method reached κ = 0.936. Amyloid PET positivity was strongly associated with progression to AD across all methods. Hazard ratios were highest for assisted visual interpretation (HR = 3.23, 95% CI 1.94-5.38, p < 0.0001), followed by SUVR quantification (HR = 2.19, 95% CI 1.55-3.10, p < 0.0001) and structured visual reading (HR = 1.83, 95% CI 1.10-3.06, p = 0.02).
CONCLUSION: Amyloid PET positivity consistently predicted conversion to AD regardless of interpretation method. Assisted visual and semiquantitative approaches showed numerically higher prognostic discrimination, while expert structured visual reading remained clinically reliable.},
}
RevDate: 2026-08-27
CSF p-tau205: a biomarker of Alzheimer's disease progression and biological staging.
Molecular psychiatry [Epub ahead of print].
Among soluble tau biomarkers, tau phosphorylation at position T205 (p-tau205) has been suggested to distinctly emergence across Alzheimer's disease (AD) continuum compared to other p-tau and non-phosphorylated tau forms, and a moderate relationship with both amyloid-β and tau aggregated pathologies. To evaluate this and further expand the characterization of this biomarker, we measured cerebrospinal fluid (CSF) p-tau205 using an in-house developed immunoassay in a total of 2069 samples from the BioFINDER-2 (n = 1364) and BioFINDER-1 (n = 705) cohorts. These two cohorts spanned the full AD continuum and were analyzed to assess cross-sectional and longitudinal associations with imaging and clinical measures. CSF p-tau205 levels were elevated in both biologically and clinically advanced disease stages. In Aβ-positive individuals, baseline p-tau205 levels correlated with Aβ-PET (R[2] = 0.28), tau-PET (medial temporal: R[2] = 0.35, neocortical: R[2] = 0.29), cortical atrophy (R[2] = 0.15) and cognition (MMSE, R[2] = 0.15). Baseline p-tau205 predicted subsequent Aβ accumulation (R[2] = 0.44) and tau-accumulation measured by PET (R[2] = 0.33). Longitudinal p-tau205 levels increased more steeply longitudinally in Aβ-positive than Aβ-negative participants (β[95%CI] = 0.16[0.12-0.21], p < 0.001). Longitudinal p-tau205 changes were associated with cortical thinning (R[2] = 0.32) and cognitive decline (R[2] ≥ 0.41). When incorporating Aβ42/40, p-tau217 and p-tau205 into a conceptual CSF-based staging model, the final p-tau205-positive stage showed the strongest association with cortical atrophy, cognitive impairment, and risk of progression to dementia (HR = 6.40[4.28-9.59]). These findings support CSF p-tau205 as a biomarker of Alzheimer's disease pathology and progression with potential value for biological staging.
Additional Links: PMID-42661061
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661061,
year = {2026},
author = {Lantero-Rodriguez, J and Janelidze, S and Palmqvist, S and Braun-Wohlfahrt, LS and Vavra, J and Bali, D and Orduña Dolado, A and Mattsson-Carlgren, N and Stomrud, E and Zetterberg, H and Blennow, K and Hansson, O and Montoliu-Gaya, L and Salvadó, G},
title = {CSF p-tau205: a biomarker of Alzheimer's disease progression and biological staging.},
journal = {Molecular psychiatry},
volume = {},
number = {},
pages = {},
pmid = {42661061},
issn = {1476-5578},
abstract = {Among soluble tau biomarkers, tau phosphorylation at position T205 (p-tau205) has been suggested to distinctly emergence across Alzheimer's disease (AD) continuum compared to other p-tau and non-phosphorylated tau forms, and a moderate relationship with both amyloid-β and tau aggregated pathologies. To evaluate this and further expand the characterization of this biomarker, we measured cerebrospinal fluid (CSF) p-tau205 using an in-house developed immunoassay in a total of 2069 samples from the BioFINDER-2 (n = 1364) and BioFINDER-1 (n = 705) cohorts. These two cohorts spanned the full AD continuum and were analyzed to assess cross-sectional and longitudinal associations with imaging and clinical measures. CSF p-tau205 levels were elevated in both biologically and clinically advanced disease stages. In Aβ-positive individuals, baseline p-tau205 levels correlated with Aβ-PET (R[2] = 0.28), tau-PET (medial temporal: R[2] = 0.35, neocortical: R[2] = 0.29), cortical atrophy (R[2] = 0.15) and cognition (MMSE, R[2] = 0.15). Baseline p-tau205 predicted subsequent Aβ accumulation (R[2] = 0.44) and tau-accumulation measured by PET (R[2] = 0.33). Longitudinal p-tau205 levels increased more steeply longitudinally in Aβ-positive than Aβ-negative participants (β[95%CI] = 0.16[0.12-0.21], p < 0.001). Longitudinal p-tau205 changes were associated with cortical thinning (R[2] = 0.32) and cognitive decline (R[2] ≥ 0.41). When incorporating Aβ42/40, p-tau217 and p-tau205 into a conceptual CSF-based staging model, the final p-tau205-positive stage showed the strongest association with cortical atrophy, cognitive impairment, and risk of progression to dementia (HR = 6.40[4.28-9.59]). These findings support CSF p-tau205 as a biomarker of Alzheimer's disease pathology and progression with potential value for biological staging.},
}
RevDate: 2026-08-27
A multiancestry polygenic risk score for Alzheimer's disease is associated with cognitive decline and neuropathological hallmarks in diverse populations.
Nature genetics [Epub ahead of print].
Previously derived polygenic risk scores (PRSs) for Alzheimer's disease (AD) perform inconsistently across diverse ancestries. We developed an APOE-independent multiancestry AD PRS using genome-wide association study summary statistics applied to European ancestry, African American, Caribbean Hispanic and East Asian cohorts. PRS performance was evaluated in a large independent multiancestry dataset and validated in several additional multiancestry cohorts. The PRS was significantly associated with AD in European ancestry, African American, Caribbean Hispanic and Native American Hispanic groups with adjusted odds ratios between 1.14 and 1.52 per PRS standard deviation. PRS performance was validated in the replication cohorts (odds ratios: 1.21-1.65). The PRS was also associated with poorer memory, executive function and language performance, greater AD-related neuropathological burden, reduced hippocampal volume, lower cerebrospinal fluid amyloid-β42 and elevated total tau and phosphorylated tau, with stronger phosphorylated tau associations observed in women. Our findings support the value of ancestry-aware PRSs as a component of broader multimodal risk stratification frameworks.
Additional Links: PMID-42661068
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661068,
year = {2026},
author = {Kurniansyah, N and Tasaki, S and Rehman, H and Zhu, C and Farrell, J and Sherva, R and Hauger, R and Merritt, VC and Panizzon, M and Zhang, R and Gaziano, JM and Gim, J and Lee, K and Lee, DY and Nho, K and Vialle, RA and Mukherjee, S and Trittschuh, EH and Lee, AJ and Brickman, AM and Cruchaga, C and Risacher, S and Greve, DN and Crane, P and Martin, E and Bush, WS and Mayeux, R and Haines, JL and Pericak-Vance, MA and Logue, M and Bennett, DA and Barnes, LL and Saykin, A and Hohman, T and Wang, LS and Schellenberg, GD and Ang, TFA and Au, R and Mez, J and Lunetta, KL and Zhang, X and Farrer, LA},
title = {A multiancestry polygenic risk score for Alzheimer's disease is associated with cognitive decline and neuropathological hallmarks in diverse populations.},
journal = {Nature genetics},
volume = {},
number = {},
pages = {},
pmid = {42661068},
issn = {1546-1718},
support = {R01-AG048927//U.S. Department of Health & Human Services | NIH | National Institute on Aging (U.S. National Institute on Aging)/ ; U01-AG058654//U.S. Department of Health & Human Services | NIH | National Institute on Aging (U.S. National Institute on Aging)/ ; U01-AG062602//U.S. Department of Health & Human Services | NIH | National Institute on Aging (U.S. National Institute on Aging)/ ; U19-AG068753//U.S. Department of Health & Human Services | NIH | National Institute on Aging (U.S. National Institute on Aging)/ ; U01-AG072577//U.S. Department of Health & Human Services | NIH | National Institute on Aging (U.S. National Institute on Aging)/ ; R01-AG080810//U.S. Department of Health & Human Services | NIH | National Institute on Aging (U.S. National Institute on Aging)/ ; U01-AG082665//U.S. Department of Health & Human Services | NIH | National Institute on Aging (U.S. National Institute on Aging)/ ; T32-GM150533//U.S. Department of Health & Human Services | NIH | National Institute of General Medical Sciences (NIGMS)/ ; },
abstract = {Previously derived polygenic risk scores (PRSs) for Alzheimer's disease (AD) perform inconsistently across diverse ancestries. We developed an APOE-independent multiancestry AD PRS using genome-wide association study summary statistics applied to European ancestry, African American, Caribbean Hispanic and East Asian cohorts. PRS performance was evaluated in a large independent multiancestry dataset and validated in several additional multiancestry cohorts. The PRS was significantly associated with AD in European ancestry, African American, Caribbean Hispanic and Native American Hispanic groups with adjusted odds ratios between 1.14 and 1.52 per PRS standard deviation. PRS performance was validated in the replication cohorts (odds ratios: 1.21-1.65). The PRS was also associated with poorer memory, executive function and language performance, greater AD-related neuropathological burden, reduced hippocampal volume, lower cerebrospinal fluid amyloid-β42 and elevated total tau and phosphorylated tau, with stronger phosphorylated tau associations observed in women. Our findings support the value of ancestry-aware PRSs as a component of broader multimodal risk stratification frameworks.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-28
Quercetin as a Hypothesized Involvement of VMAT2 in Neurodegenerative Diseases-Mechanistic Insight and Therapeutic Applications.
Molecular neurobiology, 63(1):.
Neurodegenerative diseases, particularly Alzheimer's disease, Parkinson's disease and Huntington's disease are characterized by progressive neuronal loss driven by complex mechanisms such as oxidative stress, neuroinflammation, protein aggregation, neurotransmitter imbalance, and synaptic dysfunction. Among these, Alzheimer's disease remains the most prevalent and challenging disorder, lacking effective disease-modifying therapies. Quercetin, a naturally occurring flavonoid abundant in fruits and vegetables, has attracted considerable attention due to its potent antioxidant, anti-inflammatory, anti-apoptotic, and neuroprotective properties, along with its ability to cross the blood-brain barrier. This review critically examines the potential role of quercetin in modulating key pathological pathways in neurological disease, with a special focus on its interaction with the vesicular monoamine transporter 2 (VMAT2). Vesicular monoamine transporter 2 plays a crucial role in maintaining monoamine neurotransmitter homeostasis and protecting neurons from oxidative damage caused by cytosolic monoamine degradation. Increasing data indicates that VMAT2-mediated dysfunction represents one of multiple processes that lead to neurotoxicity by altering monoamine synthesis, increasing oxidative damage, and leading to synaptic damage, especially in neuronal pathways. Quercetin, as a potential monoamine oxidase inhibitor and reactive oxygen species scavenger, may indirectly preserve vesicular monoamine transporter 2 function and mitigate downstream neurotoxic events. Overall, the multitargeted actions of quercetin, combined with its potential influence on vesicular monoamine transporter 2-mediated pathways, highlight its promise as a complementary therapeutic candidate for further neurodegenerative disorders. An increasing number of studies demonstrates that quercetin may indirectly regulate VMAT2 function by eliminating reactive oxygen compounds, decreasing neuroinflammation, inhibiting monoamine oxidase activity, improving mitochondrial activity, and maintaining monoaminergic neuronal function, although there remains limited direct evidence connecting quercetin to VMAT2 regulation. The substance quercetin can reduce oxidative neuronal damage and decrease subsequent neurodegenerative events through several connected methods. Although direct experimental verification of the quercetin-VMAT2 connection is still lacking, the data that is now accessible suggests that VMAT2 may be a suitable target for further research. Therefore, the suggested quercetin-VMAT2 connection should be seen as a hypothetical and mechanistic approach.
Additional Links: PMID-42661114
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661114,
year = {2026},
author = {Sharma, K and Vikram, V and Jamwal, P and Bhaumik, S and Prasad, N and Rohit, and Juneja, R},
title = {Quercetin as a Hypothesized Involvement of VMAT2 in Neurodegenerative Diseases-Mechanistic Insight and Therapeutic Applications.},
journal = {Molecular neurobiology},
volume = {63},
number = {1},
pages = {},
pmid = {42661114},
issn = {1559-1182},
mesh = {*Vesicular Monoamine Transport Proteins/metabolism ; Humans ; Animals ; *Quercetin/therapeutic use/pharmacology ; *Neurodegenerative Diseases/drug therapy/metabolism ; Oxidative Stress/drug effects ; Neuroprotective Agents/therapeutic use/pharmacology ; Antioxidants/therapeutic use/pharmacology ; },
abstract = {Neurodegenerative diseases, particularly Alzheimer's disease, Parkinson's disease and Huntington's disease are characterized by progressive neuronal loss driven by complex mechanisms such as oxidative stress, neuroinflammation, protein aggregation, neurotransmitter imbalance, and synaptic dysfunction. Among these, Alzheimer's disease remains the most prevalent and challenging disorder, lacking effective disease-modifying therapies. Quercetin, a naturally occurring flavonoid abundant in fruits and vegetables, has attracted considerable attention due to its potent antioxidant, anti-inflammatory, anti-apoptotic, and neuroprotective properties, along with its ability to cross the blood-brain barrier. This review critically examines the potential role of quercetin in modulating key pathological pathways in neurological disease, with a special focus on its interaction with the vesicular monoamine transporter 2 (VMAT2). Vesicular monoamine transporter 2 plays a crucial role in maintaining monoamine neurotransmitter homeostasis and protecting neurons from oxidative damage caused by cytosolic monoamine degradation. Increasing data indicates that VMAT2-mediated dysfunction represents one of multiple processes that lead to neurotoxicity by altering monoamine synthesis, increasing oxidative damage, and leading to synaptic damage, especially in neuronal pathways. Quercetin, as a potential monoamine oxidase inhibitor and reactive oxygen species scavenger, may indirectly preserve vesicular monoamine transporter 2 function and mitigate downstream neurotoxic events. Overall, the multitargeted actions of quercetin, combined with its potential influence on vesicular monoamine transporter 2-mediated pathways, highlight its promise as a complementary therapeutic candidate for further neurodegenerative disorders. An increasing number of studies demonstrates that quercetin may indirectly regulate VMAT2 function by eliminating reactive oxygen compounds, decreasing neuroinflammation, inhibiting monoamine oxidase activity, improving mitochondrial activity, and maintaining monoaminergic neuronal function, although there remains limited direct evidence connecting quercetin to VMAT2 regulation. The substance quercetin can reduce oxidative neuronal damage and decrease subsequent neurodegenerative events through several connected methods. Although direct experimental verification of the quercetin-VMAT2 connection is still lacking, the data that is now accessible suggests that VMAT2 may be a suitable target for further research. Therefore, the suggested quercetin-VMAT2 connection should be seen as a hypothetical and mechanistic approach.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
*Vesicular Monoamine Transport Proteins/metabolism
Humans
Animals
*Quercetin/therapeutic use/pharmacology
*Neurodegenerative Diseases/drug therapy/metabolism
Oxidative Stress/drug effects
Neuroprotective Agents/therapeutic use/pharmacology
Antioxidants/therapeutic use/pharmacology
RevDate: 2026-08-27
CmpDate: 2026-08-28
From viral epigenetic reprogramming to neuroinflammation: Mechanisms driving neurodegeneration.
Journal of neurovirology, 32(5):.
Viruses exploit host genetic machinery to establish chronic infections and contribute to chronic neurodegenerative and immune disorders. By manipulating DNA methylation, histone modifications, and non-coding RNA networks, viruses such as Epstein-Barr virus (EBV), Herpes Simplex virus (HSV), Zika virus (ZIKV), and Human immunodeficiency virus (HIV) induce epigenetic changes that silence or delay the host antiviral defenses and reprogram host gene expression. For instance, EBV recruits DNA methyltransferases (DNMTs) to hypermethylate genes such as SOCS1 while ZIKV disrupts neuronal DNA methylation via heterochromatinization. Concurrently, HIV-1 encoded Tat protein disrupts H3K27 acetylation in astrocytes that potently triggers glutamate excitotoxicity. Viruses also subvert the chromatin architecture to modulate 3D interactions and reader protein recruitment, thus rewiring transcriptional programs. Such epigenetic alterations correlate with neuropathologies wherein global hypomethylation and histone acetylation contribute to Alzheimer's or Parkinson's disease. Although several mechanisms are known, the field of viral control in neuroepigenetics is underexplored. Emerging therapies that target viral-host epigenetic crosstalk through DNMT or HDAC inhibitors are promising. This review highlights how neurotropic viruses co-opt epigenetic pathways to drive neurodegeneration. We also explore biomarker-driven strategies for personalized interventions in neurodegenerative disorders thus emphasizing potential epigenetic editing tools to restore neuronal homeostasis.
Additional Links: PMID-42661118
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661118,
year = {2026},
author = {Vora, C and Saini, V and Shevtsov, M and Trivedi, P and Sonawane, A and Jha, HC},
title = {From viral epigenetic reprogramming to neuroinflammation: Mechanisms driving neurodegeneration.},
journal = {Journal of neurovirology},
volume = {32},
number = {5},
pages = {},
pmid = {42661118},
issn = {1538-2443},
support = {R44AR079960//Technische Universität München/ ; PRIN2022//Ministero dell'Istruzione, dell'Università e della Ricerca/ ; IG2025//Associazione Italiana per la Ricerca sul Cancro/ ; 37(1693)/17/EMR-II//Council of Scientific and Industrial Research, India/ ; ANRF/PAIR/2025/000018/PAIR-A(G)).//ANRF (IN)/ ; },
mesh = {Humans ; *Epigenesis, Genetic ; DNA Methylation ; Animals ; Host-Pathogen Interactions/genetics ; Herpesvirus 4, Human/genetics/pathogenicity/metabolism ; Histones/metabolism/genetics ; *Neuroinflammatory Diseases/virology/genetics/pathology ; Neurons/virology/pathology/metabolism ; Simplexvirus/genetics/pathogenicity ; *Alzheimer Disease/virology/genetics/pathology ; Parkinson Disease/virology/genetics/pathology ; Neurodegenerative Diseases/virology/genetics ; HIV-1/genetics/pathogenicity ; Virus Diseases/genetics ; },
abstract = {Viruses exploit host genetic machinery to establish chronic infections and contribute to chronic neurodegenerative and immune disorders. By manipulating DNA methylation, histone modifications, and non-coding RNA networks, viruses such as Epstein-Barr virus (EBV), Herpes Simplex virus (HSV), Zika virus (ZIKV), and Human immunodeficiency virus (HIV) induce epigenetic changes that silence or delay the host antiviral defenses and reprogram host gene expression. For instance, EBV recruits DNA methyltransferases (DNMTs) to hypermethylate genes such as SOCS1 while ZIKV disrupts neuronal DNA methylation via heterochromatinization. Concurrently, HIV-1 encoded Tat protein disrupts H3K27 acetylation in astrocytes that potently triggers glutamate excitotoxicity. Viruses also subvert the chromatin architecture to modulate 3D interactions and reader protein recruitment, thus rewiring transcriptional programs. Such epigenetic alterations correlate with neuropathologies wherein global hypomethylation and histone acetylation contribute to Alzheimer's or Parkinson's disease. Although several mechanisms are known, the field of viral control in neuroepigenetics is underexplored. Emerging therapies that target viral-host epigenetic crosstalk through DNMT or HDAC inhibitors are promising. This review highlights how neurotropic viruses co-opt epigenetic pathways to drive neurodegeneration. We also explore biomarker-driven strategies for personalized interventions in neurodegenerative disorders thus emphasizing potential epigenetic editing tools to restore neuronal homeostasis.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
*Epigenesis, Genetic
DNA Methylation
Animals
Host-Pathogen Interactions/genetics
Herpesvirus 4, Human/genetics/pathogenicity/metabolism
Histones/metabolism/genetics
*Neuroinflammatory Diseases/virology/genetics/pathology
Neurons/virology/pathology/metabolism
Simplexvirus/genetics/pathogenicity
*Alzheimer Disease/virology/genetics/pathology
Parkinson Disease/virology/genetics/pathology
Neurodegenerative Diseases/virology/genetics
HIV-1/genetics/pathogenicity
Virus Diseases/genetics
RevDate: 2026-08-28
CmpDate: 2026-08-28
Nutritional modulation of neuroinflammation in Alzheimer's disease and mild cognitive impairment: a systematic review of clinical and preclinical evidence.
BMC geriatrics, 26(1):.
BACKGROUND: Neuroinflammationis a key contributor to the pathogenesis of Alzheimer's disease (AD) and mild cognitive impairment (MCI). Nutritional interventions have been proposed as potential modulators of neuroinflammatory pathways; however, the consistency and strength of the available evidence remain uncertain. This systematic review evaluated the clinical and preclinical evidence regarding the effects of nutritional interventions on neuroinflammatory mechanisms relevant to AD and MCI.
METHODS: PubMed/MEDLINE, Embase, Scopus, and Web of Science were systematically searched for studies investigating nutritional interventions and neuroinflammatory outcomes. Eligible studies included randomized controlled trials and preclinical experimental investigations evaluating omega-3 fatty acids, ketogenic dietary interventions, B-vitamin supplementation, vitamin D, and microbiota-targeted strategies. Primary outcomes included inflammatory cytokines, neuroinflammatory signaling pathways, oxidative stress biomarkers, and glial activation. Methodological quality and risk of bias were assessed using study design-specific appraisal tools.
RESULTS: Twenty-two studies met the eligibility criteria, including ten clinical studies and twelve preclinical investigations. Overall, nutritional interventions were associated with modulation of neuroinflammatory biomarkers, including TNF-α, IL-1β, and IL-6, together with alterations in NF-κB and NLRP3 signaling, microglial activation, and oxidative stress pathways. The most consistent evidence supported omega-3 fatty acids and ketogenic dietary interventions, although evidence for ketogenic strategies was derived predominantly from preclinical studies. Evidence for B-vitamin supplementation, vitamin D, and microbiota-targeted interventions was limited because relatively few eligible studies were available. Considerable heterogeneity was observed across intervention protocols, outcome measures, and study populations.
CONCLUSIONS: Nutritional interventions may modulate biological pathways involved in neuroinflammation; however, the strength and certainty of the evidence vary across intervention categories. Larger, well-designed randomized controlled trials incorporating standardized neuroinflammatory biomarkers are required to clarify the therapeutic potential of nutritional strategies for AD and MCI.
Additional Links: PMID-42661181
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661181,
year = {2026},
author = {Sayed, MA and Said, A and Meselhy, M},
title = {Nutritional modulation of neuroinflammation in Alzheimer's disease and mild cognitive impairment: a systematic review of clinical and preclinical evidence.},
journal = {BMC geriatrics},
volume = {26},
number = {1},
pages = {},
pmid = {42661181},
issn = {1471-2318},
mesh = {Humans ; *Alzheimer Disease/diet therapy/metabolism ; *Cognitive Dysfunction/diet therapy/metabolism ; *Neuroinflammatory Diseases/diet therapy ; Animals ; Fatty Acids, Omega-3/administration & dosage ; Dietary Supplements ; Diet, Ketogenic/methods ; Vitamin D/administration & dosage ; Randomized Controlled Trials as Topic/methods ; },
abstract = {BACKGROUND: Neuroinflammationis a key contributor to the pathogenesis of Alzheimer's disease (AD) and mild cognitive impairment (MCI). Nutritional interventions have been proposed as potential modulators of neuroinflammatory pathways; however, the consistency and strength of the available evidence remain uncertain. This systematic review evaluated the clinical and preclinical evidence regarding the effects of nutritional interventions on neuroinflammatory mechanisms relevant to AD and MCI.
METHODS: PubMed/MEDLINE, Embase, Scopus, and Web of Science were systematically searched for studies investigating nutritional interventions and neuroinflammatory outcomes. Eligible studies included randomized controlled trials and preclinical experimental investigations evaluating omega-3 fatty acids, ketogenic dietary interventions, B-vitamin supplementation, vitamin D, and microbiota-targeted strategies. Primary outcomes included inflammatory cytokines, neuroinflammatory signaling pathways, oxidative stress biomarkers, and glial activation. Methodological quality and risk of bias were assessed using study design-specific appraisal tools.
RESULTS: Twenty-two studies met the eligibility criteria, including ten clinical studies and twelve preclinical investigations. Overall, nutritional interventions were associated with modulation of neuroinflammatory biomarkers, including TNF-α, IL-1β, and IL-6, together with alterations in NF-κB and NLRP3 signaling, microglial activation, and oxidative stress pathways. The most consistent evidence supported omega-3 fatty acids and ketogenic dietary interventions, although evidence for ketogenic strategies was derived predominantly from preclinical studies. Evidence for B-vitamin supplementation, vitamin D, and microbiota-targeted interventions was limited because relatively few eligible studies were available. Considerable heterogeneity was observed across intervention protocols, outcome measures, and study populations.
CONCLUSIONS: Nutritional interventions may modulate biological pathways involved in neuroinflammation; however, the strength and certainty of the evidence vary across intervention categories. Larger, well-designed randomized controlled trials incorporating standardized neuroinflammatory biomarkers are required to clarify the therapeutic potential of nutritional strategies for AD and MCI.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
*Alzheimer Disease/diet therapy/metabolism
*Cognitive Dysfunction/diet therapy/metabolism
*Neuroinflammatory Diseases/diet therapy
Animals
Fatty Acids, Omega-3/administration & dosage
Dietary Supplements
Diet, Ketogenic/methods
Vitamin D/administration & dosage
Randomized Controlled Trials as Topic/methods
RevDate: 2026-08-28
CmpDate: 2026-08-28
HSPA8 orchestrates SNARE complex assembly to drive extracellular vesicle-mediated spread of p-tau217 in Alzheimer's disease.
Translational neurodegeneration, 15(1):.
BACKGROUND: Dysregulation of multivesicular bodies (MVBs) in Alzheimer's disease (AD) contributes to aberrant tau secretion via extracellular vesicles (EVs). This may potentially explain our previous paradoxical observation of elevated free-form p-tau217 alongside reduced p-tau217[+] EVs in plasma. This study aimed to investigate the mechanisms underlying the reduction of p-tau217[+] EVs to uncover AD therapeutic targets.
METHODS: By integrating hippocampal spatial transcriptomics of human brain with EV proteomics of cerebrospinal fluid, we identified key regulators of p-tau217[+] EV release. Subsequently, we investigated the mechanisms underlying the synthesis and secretion of p-tau217[+] EVs. The regulatory roles of these candidate proteins were systematically evaluated through shRNA knockdown and interference with a synthetic peptide in both Aβ42-treated cells and AD model mice.
RESULTS: Heat shock protein family A member 8 (HSPA8) was identified as a crucial regulator of EV biogenesis and release, mediating the Aβ-SNAP29 interaction to disrupt SNARE complex assembly and impair p-tau217[+] EV secretion. In AD models, HSPA8 inhibition with shRNA rescued p-tau217[+] EVs and improved cognitive function. Additionally, blocking the Aβ-SNAP29 interaction with a selective peptide inhibitor for HSPA8 reversed the decline in p-tau217[+] EV and cognitive deficits.
CONCLUSIONS: These findings reveal a role of HSPA8 in regulating the MVB-mediated EV release and tau propagation, and highlight HSPA8 as a promising therapeutic target for modifying AD progression.
Additional Links: PMID-42661225
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661225,
year = {2026},
author = {Xu, B and Guo, Z and Chen, J and Xie, Y and Wang, P and Xiong, X and Yu, J and Xu, Z and Fu, Y and Lan, Z and Peng, G and Zhang, J},
title = {HSPA8 orchestrates SNARE complex assembly to drive extracellular vesicle-mediated spread of p-tau217 in Alzheimer's disease.},
journal = {Translational neurodegeneration},
volume = {15},
number = {1},
pages = {},
pmid = {42661225},
issn = {2047-9158},
support = {LY24H090006//Natural Science Foundation of Zhejiang Province/ ; 2025C01120//Key Research and Development Program of Zhejiang Province/ ; 2024C03098//Key Research and Development Program of Zhejiang Province/ ; 82571348//National Natural Science Foundation of China/ ; 32530027//National Natural Science Foundation of China/ ; },
mesh = {*Alzheimer Disease/metabolism/pathology ; Animals ; Humans ; *tau Proteins/metabolism ; *Extracellular Vesicles/metabolism ; *HSC70 Heat-Shock Proteins/metabolism ; *SNARE Proteins/metabolism ; Mice ; Hippocampus/metabolism ; Male ; Amyloid beta-Peptides/metabolism ; },
abstract = {BACKGROUND: Dysregulation of multivesicular bodies (MVBs) in Alzheimer's disease (AD) contributes to aberrant tau secretion via extracellular vesicles (EVs). This may potentially explain our previous paradoxical observation of elevated free-form p-tau217 alongside reduced p-tau217[+] EVs in plasma. This study aimed to investigate the mechanisms underlying the reduction of p-tau217[+] EVs to uncover AD therapeutic targets.
METHODS: By integrating hippocampal spatial transcriptomics of human brain with EV proteomics of cerebrospinal fluid, we identified key regulators of p-tau217[+] EV release. Subsequently, we investigated the mechanisms underlying the synthesis and secretion of p-tau217[+] EVs. The regulatory roles of these candidate proteins were systematically evaluated through shRNA knockdown and interference with a synthetic peptide in both Aβ42-treated cells and AD model mice.
RESULTS: Heat shock protein family A member 8 (HSPA8) was identified as a crucial regulator of EV biogenesis and release, mediating the Aβ-SNAP29 interaction to disrupt SNARE complex assembly and impair p-tau217[+] EV secretion. In AD models, HSPA8 inhibition with shRNA rescued p-tau217[+] EVs and improved cognitive function. Additionally, blocking the Aβ-SNAP29 interaction with a selective peptide inhibitor for HSPA8 reversed the decline in p-tau217[+] EV and cognitive deficits.
CONCLUSIONS: These findings reveal a role of HSPA8 in regulating the MVB-mediated EV release and tau propagation, and highlight HSPA8 as a promising therapeutic target for modifying AD progression.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
*Alzheimer Disease/metabolism/pathology
Animals
Humans
*tau Proteins/metabolism
*Extracellular Vesicles/metabolism
*HSC70 Heat-Shock Proteins/metabolism
*SNARE Proteins/metabolism
Mice
Hippocampus/metabolism
Male
Amyloid beta-Peptides/metabolism
RevDate: 2026-08-28
Low-frequency magnetic fields can improve behavioral abnormalities and suppress Aβ accumulation detected by thioflavin T in Caenorhabditis elegans models of Alzheimer's disease.
Electromagnetic biology and medicine [Epub ahead of print].
Amyloid β (Aβ) accumulation and Aβ-related senile plaques, the pathological hallmarks of Alzheimer's disease (AD), damage neurons and impair cognitive functions in patients. Previous studies have shown that low‑field magnetic stimulation attenuates Aβ and enhances cognitive performance. In this study, AD models of Caenorhabditis elegans expressing Aβ in the nerves were placed in a low-frequency magnetic field (LFMF) and then subjected to a chemotaxis assay to evaluate attractive behavior. In control C. elegans (CL2122), which do not express Aβ but carried only the vector, the chemotactic behavior was normal and unaffected by LFMF. In contrast, in the AD model expressing Aβ within the nervous system, abnormalities in chemotactic behavior were observed; however, these were improved in a manner dependent on LFMF strength. In addition, the AD model expressing Aβ in the muscle exhibited paralysis, which was significantly attenuated by LFMF. Thioflavin T staining revealed that, in the AD model expressing in muscles, Aβ accumulation declined in the LFMF-treated group compared to that of the non-LFMF group. These results suggest that LFMF can improve abnormal chemotactic behavior and attenuate Aβ-induced paralysis by suppressing the accumulation and aggregation of Aβ in a C. elegans model of AD.
Additional Links: PMID-42661318
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661318,
year = {2026},
author = {Kiyota, M and Jin, Y and Nemoto, N and Kakikawa, M},
title = {Low-frequency magnetic fields can improve behavioral abnormalities and suppress Aβ accumulation detected by thioflavin T in Caenorhabditis elegans models of Alzheimer's disease.},
journal = {Electromagnetic biology and medicine},
volume = {},
number = {},
pages = {1-8},
doi = {10.1080/15368378.2026.2722639},
pmid = {42661318},
issn = {1536-8386},
abstract = {Amyloid β (Aβ) accumulation and Aβ-related senile plaques, the pathological hallmarks of Alzheimer's disease (AD), damage neurons and impair cognitive functions in patients. Previous studies have shown that low‑field magnetic stimulation attenuates Aβ and enhances cognitive performance. In this study, AD models of Caenorhabditis elegans expressing Aβ in the nerves were placed in a low-frequency magnetic field (LFMF) and then subjected to a chemotaxis assay to evaluate attractive behavior. In control C. elegans (CL2122), which do not express Aβ but carried only the vector, the chemotactic behavior was normal and unaffected by LFMF. In contrast, in the AD model expressing Aβ within the nervous system, abnormalities in chemotactic behavior were observed; however, these were improved in a manner dependent on LFMF strength. In addition, the AD model expressing Aβ in the muscle exhibited paralysis, which was significantly attenuated by LFMF. Thioflavin T staining revealed that, in the AD model expressing in muscles, Aβ accumulation declined in the LFMF-treated group compared to that of the non-LFMF group. These results suggest that LFMF can improve abnormal chemotactic behavior and attenuate Aβ-induced paralysis by suppressing the accumulation and aggregation of Aβ in a C. elegans model of AD.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-28
AHA1 Regulates Aβ Production via Modulation of APP Abundance and γ-Secretase Assembly.
Journal of neurochemistry, 170(9):e70544.
Deposition of amyloid β-protein (Aβ) is a hallmark of Alzheimer's disease (AD), produced by γ-secretase-mediated cleavage of amyloid precursor protein (APP). The 90-kDa heat shock protein (Hsp90) co-chaperone, activator of Hsp90 ATPase homolog 1 (AHA1), is known to promote the accumulation of toxic tau species; however, its effects on Aβ production remain unclear. Using cellular models-including human embryonic kidney 293 T (HEK293T) cells, stable HEK-APP cells, presenilin 1/2 double-knockout mouse embryonic fibroblasts (PS-DKO MEFs), and Chinese hamster ovary (CHO) cells-in which AHA1 was experimentally manipulated, together with observational analyses of human iPSC-derived neurons carrying an FAD-linked APP mutation, we demonstrate that AHA1 regulates Aβ generation through two mechanisms: regulation of APP protein abundance through pathways that are at least partially independent of Hsp90 interaction and Hsp90-dependent promotion of γ-secretase assembly. Knockdown of endogenous AHA1 reduces Aβ production and decreases APP and γ-secretase component levels, whereas AHA1 overexpression elevates Aβ generation and increases the expression of these proteins. The AHA1-E67K mutant, which has impaired Hsp90 binding, lowers Aβ production and the levels of APP and γ-secretase components compared with wild-type AHA1. AHA1 associates with APP and APH1, an immature γ-secretase component, indicating its role in APP proteolysis and Aβ production. Disruption of the AHA1/Hsp90 complex-through AHA1 knockdown, the E67K mutant, or a small-molecule inhibitor-reduces γ-secretase assembly. Notably, Familial AD mutations (APP-C99-I45F, PS1-L286V) upregulate AHA1/Hsp90, elevating APP/APH1 and Aβ42 production. AHA1 knockdown rescues FAD-linked Aβ42 overproduction in a mutant cell model, while AHA1 overexpression exacerbates PS1 mutant Aβ production. Collectively, these findings reveal that AHA1 regulates Aβ production by modulating APP abundance and γ-secretase assembly, establishing AHA1 as a potential target for therapeutic intervention in AD.
Additional Links: PMID-42661397
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661397,
year = {2026},
author = {Noorani, AA and Islam, S and Filip, E and Catalfano, K and Paswan, S and Nagarajan, V and Wilkins, HM and Blagg, BSJ and Zou, K and Wolfe, MS},
title = {AHA1 Regulates Aβ Production via Modulation of APP Abundance and γ-Secretase Assembly.},
journal = {Journal of neurochemistry},
volume = {170},
number = {9},
pages = {e70544},
doi = {10.1111/jnc.70544},
pmid = {42661397},
issn = {1471-4159},
support = {AG066986//National Institute on Aging (NIA), National Institutes of Health/ ; },
mesh = {Humans ; *Amyloid Precursor Protein Secretases/metabolism ; Animals ; *Amyloid beta-Protein Precursor/metabolism/genetics ; Cricetulus ; *Amyloid beta-Peptides/biosynthesis/metabolism ; CHO Cells ; HEK293 Cells ; Mice ; HSP90 Heat-Shock Proteins/metabolism ; *Molecular Chaperones/metabolism/genetics ; Mice, Knockout ; Presenilin-1/genetics ; },
abstract = {Deposition of amyloid β-protein (Aβ) is a hallmark of Alzheimer's disease (AD), produced by γ-secretase-mediated cleavage of amyloid precursor protein (APP). The 90-kDa heat shock protein (Hsp90) co-chaperone, activator of Hsp90 ATPase homolog 1 (AHA1), is known to promote the accumulation of toxic tau species; however, its effects on Aβ production remain unclear. Using cellular models-including human embryonic kidney 293 T (HEK293T) cells, stable HEK-APP cells, presenilin 1/2 double-knockout mouse embryonic fibroblasts (PS-DKO MEFs), and Chinese hamster ovary (CHO) cells-in which AHA1 was experimentally manipulated, together with observational analyses of human iPSC-derived neurons carrying an FAD-linked APP mutation, we demonstrate that AHA1 regulates Aβ generation through two mechanisms: regulation of APP protein abundance through pathways that are at least partially independent of Hsp90 interaction and Hsp90-dependent promotion of γ-secretase assembly. Knockdown of endogenous AHA1 reduces Aβ production and decreases APP and γ-secretase component levels, whereas AHA1 overexpression elevates Aβ generation and increases the expression of these proteins. The AHA1-E67K mutant, which has impaired Hsp90 binding, lowers Aβ production and the levels of APP and γ-secretase components compared with wild-type AHA1. AHA1 associates with APP and APH1, an immature γ-secretase component, indicating its role in APP proteolysis and Aβ production. Disruption of the AHA1/Hsp90 complex-through AHA1 knockdown, the E67K mutant, or a small-molecule inhibitor-reduces γ-secretase assembly. Notably, Familial AD mutations (APP-C99-I45F, PS1-L286V) upregulate AHA1/Hsp90, elevating APP/APH1 and Aβ42 production. AHA1 knockdown rescues FAD-linked Aβ42 overproduction in a mutant cell model, while AHA1 overexpression exacerbates PS1 mutant Aβ production. Collectively, these findings reveal that AHA1 regulates Aβ production by modulating APP abundance and γ-secretase assembly, establishing AHA1 as a potential target for therapeutic intervention in AD.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
*Amyloid Precursor Protein Secretases/metabolism
Animals
*Amyloid beta-Protein Precursor/metabolism/genetics
Cricetulus
*Amyloid beta-Peptides/biosynthesis/metabolism
CHO Cells
HEK293 Cells
Mice
HSP90 Heat-Shock Proteins/metabolism
*Molecular Chaperones/metabolism/genetics
Mice, Knockout
Presenilin-1/genetics
RevDate: 2026-08-28
CmpDate: 2026-08-28
Ultraviolet radiation and neurodegeneration: molecular mechanisms underlying dual neuroprotective and neurotoxic effects.
Frontiers in cellular neuroscience, 20:1909393.
Ultraviolet radiation exhibits a complex, often contradictory link to neurodegeneration risk/progression, spanning clinically diagnosed diseases [Parkinson's Disease (PD), Alzheimer's Disease (AD), Multiple Sclerosis (MS) and Amyotrophic Lateral Sclerosis (ALS)] or intermediate phenotypes (decreased neurogenesis, loss of hippocampal volume). The aim of this review is to highlight the dual impact of UV radiation by collecting and synthesizing experimental (preclinical and translational) evidence as well as epidemiological evidence. Current literature exhibits a clear dichotomy: while Vitamin D is capable of exerting a potent neuroprotective effect via anti-oxidant and anti-inflammatory pathways, chronic and intense UV radiation exposure actually hastens the progression or even drives neurodegeneration via a variety of mechanisms. UV radiation exerts its effects through various interconnected pathways: DNA damage pathways, ROS mediated pathways, vitamin D signaling and the skin-brain axis, which unifies both protective and degenerative effects of UV radiation. Owing to the increasing occurrence of neurodegenerative diseases in the general population, these pathways and mechanisms must be leveraged in future research to develop novel therapeutic and preventive strategies. Investigation of biomarkers linked to certain genetic and environmental factors that could provide a link to predisposition toward neurodegeneration and standardization of UV radiation dosimetry (exposure dose/duration) across experimental or pre-clinical studies must also be prioritized.
Additional Links: PMID-42661656
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661656,
year = {2026},
author = {Praharaj, S and Chakraborty, E and Mahalingam, G},
title = {Ultraviolet radiation and neurodegeneration: molecular mechanisms underlying dual neuroprotective and neurotoxic effects.},
journal = {Frontiers in cellular neuroscience},
volume = {20},
number = {},
pages = {1909393},
pmid = {42661656},
issn = {1662-5102},
abstract = {Ultraviolet radiation exhibits a complex, often contradictory link to neurodegeneration risk/progression, spanning clinically diagnosed diseases [Parkinson's Disease (PD), Alzheimer's Disease (AD), Multiple Sclerosis (MS) and Amyotrophic Lateral Sclerosis (ALS)] or intermediate phenotypes (decreased neurogenesis, loss of hippocampal volume). The aim of this review is to highlight the dual impact of UV radiation by collecting and synthesizing experimental (preclinical and translational) evidence as well as epidemiological evidence. Current literature exhibits a clear dichotomy: while Vitamin D is capable of exerting a potent neuroprotective effect via anti-oxidant and anti-inflammatory pathways, chronic and intense UV radiation exposure actually hastens the progression or even drives neurodegeneration via a variety of mechanisms. UV radiation exerts its effects through various interconnected pathways: DNA damage pathways, ROS mediated pathways, vitamin D signaling and the skin-brain axis, which unifies both protective and degenerative effects of UV radiation. Owing to the increasing occurrence of neurodegenerative diseases in the general population, these pathways and mechanisms must be leveraged in future research to develop novel therapeutic and preventive strategies. Investigation of biomarkers linked to certain genetic and environmental factors that could provide a link to predisposition toward neurodegeneration and standardization of UV radiation dosimetry (exposure dose/duration) across experimental or pre-clinical studies must also be prioritized.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-28
Redox-exercise crosstalk in neurodegenerative diseases: mechanistic perspectives on antioxidant interactions with Nrf2-BDNF signaling, autophagy, and mitochondrial plasticity.
Frontiers in nutrition, 13:1850414.
Neurodegenerative diseases (NDDs), including Alzheimer's disease and Parkinson's disease, are characterized by progressive neuronal loss driven by oxidative stress, mitochondrial dysfunction, and impaired cellular homeostasis. Emerging research highlights a complex interplay between physical exercise and antioxidant mechanisms in the regulation of redox balance and neuroprotection. This review evaluates the integrative effects of exercise and antioxidant interventions on molecular pathways involved in NDDs, emphasizing mechanistic and translational findings from both preclinical and clinical studies. This narrative review was informed by a structured literature search conducted in PubMed, Scopus, and Web of Science, focusing on studies investigating exercise, antioxidants, and NDDs. Current studies indicate that vitamins, trace elements (particularly selenium and zinc), endogenous antioxidant systems, and flavonoids may interact with exercise through partially overlapping mechanisms that may influence neurodegenerative processes. These interventions influence several interconnected molecular pathways, including redox-sensitive Nrf2 signaling, BDNF-mediated neuroplasticity, autophagy, mitochondrial plasticity, and gut-brain axis communication. Exercise-induced activation of redox-sensitive pathways enhances endogenous antioxidant defenses. Under appropriate conditions, antioxidant supplementation may complement these adaptations by limiting excessive oxidative stress and supporting cellular metabolism. Available data suggest that combined exercise-antioxidant interventions may provide additional neuroprotective benefits in some experimental settings; however, these effects are highly context-dependent and are not consistently superior to exercise alone. Furthermore, exercise-antioxidant interactions may influence epigenetic regulation and neurotrophic signaling, thereby contributing to neuroprotection. However, the literature remains limited by substantial heterogeneity in intervention protocols, antioxidant type, dosage and timing, exercise characteristics, disease stage, and the scarcity of large-scale clinical trials. Future research should prioritize clinical validation and clarify how antioxidant type, dosage, timing, and exercise parameters influence adaptive redox signaling, hormetic responses, and neuroprotective outcomes.
Additional Links: PMID-42661679
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661679,
year = {2026},
author = {Liu, L and Zhao, Y},
title = {Redox-exercise crosstalk in neurodegenerative diseases: mechanistic perspectives on antioxidant interactions with Nrf2-BDNF signaling, autophagy, and mitochondrial plasticity.},
journal = {Frontiers in nutrition},
volume = {13},
number = {},
pages = {1850414},
pmid = {42661679},
issn = {2296-861X},
abstract = {Neurodegenerative diseases (NDDs), including Alzheimer's disease and Parkinson's disease, are characterized by progressive neuronal loss driven by oxidative stress, mitochondrial dysfunction, and impaired cellular homeostasis. Emerging research highlights a complex interplay between physical exercise and antioxidant mechanisms in the regulation of redox balance and neuroprotection. This review evaluates the integrative effects of exercise and antioxidant interventions on molecular pathways involved in NDDs, emphasizing mechanistic and translational findings from both preclinical and clinical studies. This narrative review was informed by a structured literature search conducted in PubMed, Scopus, and Web of Science, focusing on studies investigating exercise, antioxidants, and NDDs. Current studies indicate that vitamins, trace elements (particularly selenium and zinc), endogenous antioxidant systems, and flavonoids may interact with exercise through partially overlapping mechanisms that may influence neurodegenerative processes. These interventions influence several interconnected molecular pathways, including redox-sensitive Nrf2 signaling, BDNF-mediated neuroplasticity, autophagy, mitochondrial plasticity, and gut-brain axis communication. Exercise-induced activation of redox-sensitive pathways enhances endogenous antioxidant defenses. Under appropriate conditions, antioxidant supplementation may complement these adaptations by limiting excessive oxidative stress and supporting cellular metabolism. Available data suggest that combined exercise-antioxidant interventions may provide additional neuroprotective benefits in some experimental settings; however, these effects are highly context-dependent and are not consistently superior to exercise alone. Furthermore, exercise-antioxidant interactions may influence epigenetic regulation and neurotrophic signaling, thereby contributing to neuroprotection. However, the literature remains limited by substantial heterogeneity in intervention protocols, antioxidant type, dosage and timing, exercise characteristics, disease stage, and the scarcity of large-scale clinical trials. Future research should prioritize clinical validation and clarify how antioxidant type, dosage, timing, and exercise parameters influence adaptive redox signaling, hormetic responses, and neuroprotective outcomes.},
}
RevDate: 2026-08-28
Editorial: Exploring miRNA roles in neuroinflammation and brain aging: mechanisms and therapeutic potential.
Frontiers in immunology, 17:1959643.
Additional Links: PMID-42661704
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661704,
year = {2026},
author = {Fukuchi, KI and Yang, J and Williams, J},
title = {Editorial: Exploring miRNA roles in neuroinflammation and brain aging: mechanisms and therapeutic potential.},
journal = {Frontiers in immunology},
volume = {17},
number = {},
pages = {1959643},
pmid = {42661704},
issn = {1664-3224},
}
RevDate: 2026-08-28
CmpDate: 2026-08-28
Real-world evidence for amyloid-targeted therapies: Lecanemab and donanemab.
Alzheimer's & dementia (Amsterdam, Netherlands), 18(3):e70404.
INTRODUCTION: Real-world safety data on amyloid-targeted therapies in early Alzheimer's disease remain limited, particularly for modified donanemab titration and direct lecanemab-donanemab comparisons.
METHODS: Retrospective review of 172 amyloid-positive patients treated with lecanemab (n = 89) or donanemab (original titration n = 21; modified n = 62). The cohort included patients with ≥2 chronic comorbidities (72.7%), systemic autoimmune or hematologic disorders, and concurrent immunomodulators.
RESULTS: Amyloid-related imaging abnormalities (ARIA) occurred in 11.2% (10/89) with lecanemab and 13.3% (11/83) with donanemab-less than in pivotal trials. Modified donanemab titration reduced ARIA versus the original protocol (8.1% vs 28.6%; p = 0.03) and TRAILBLAZER-ALZ 6 (23.6%). No anaphylaxis occurred. Surveillance magnetic resonance imaging captured 95.2% of ARIA events. Within-center comparison showed comparable safety between lecanemab and modified-titration donanemab (all p's > 0.40). IRRs occurred in 12.0% (donanemab) and 9.0% (lecanemab).
DISCUSSION: In a real-world cohort representing patients excluded from trials, ARIA and IRR rates matched or improved upon pivotal trials, supporting safe ATT use under FDA-approved MRI intervals.
Additional Links: PMID-42661728
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661728,
year = {2026},
author = {Hakim, R and Harris, K and Merrill, L and Falk-Vargas, A and Whalen, E and Xia, T and Ochoa, O and Hunter, D and Schulz, PE},
title = {Real-world evidence for amyloid-targeted therapies: Lecanemab and donanemab.},
journal = {Alzheimer's & dementia (Amsterdam, Netherlands)},
volume = {18},
number = {3},
pages = {e70404},
pmid = {42661728},
issn = {2352-8729},
abstract = {INTRODUCTION: Real-world safety data on amyloid-targeted therapies in early Alzheimer's disease remain limited, particularly for modified donanemab titration and direct lecanemab-donanemab comparisons.
METHODS: Retrospective review of 172 amyloid-positive patients treated with lecanemab (n = 89) or donanemab (original titration n = 21; modified n = 62). The cohort included patients with ≥2 chronic comorbidities (72.7%), systemic autoimmune or hematologic disorders, and concurrent immunomodulators.
RESULTS: Amyloid-related imaging abnormalities (ARIA) occurred in 11.2% (10/89) with lecanemab and 13.3% (11/83) with donanemab-less than in pivotal trials. Modified donanemab titration reduced ARIA versus the original protocol (8.1% vs 28.6%; p = 0.03) and TRAILBLAZER-ALZ 6 (23.6%). No anaphylaxis occurred. Surveillance magnetic resonance imaging captured 95.2% of ARIA events. Within-center comparison showed comparable safety between lecanemab and modified-titration donanemab (all p's > 0.40). IRRs occurred in 12.0% (donanemab) and 9.0% (lecanemab).
DISCUSSION: In a real-world cohort representing patients excluded from trials, ARIA and IRR rates matched or improved upon pivotal trials, supporting safe ATT use under FDA-approved MRI intervals.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-28
The molecular mechanisms of Guizhi Fuling Pills in ameliorating Alzheimer's disease-like cognitive impairment: insights from transcriptomics, metabolomics, and gut microbiome.
Frontiers in aging neuroscience, 18:1839445.
BACKGROUND: Alzheimer's disease (AD)-like cognitive impairment, as a major type of cognitive disorder, has witnessed a sharp rise in prevalence. Therefore, there is an urgent need to develop effective therapeutic intervention measures. Guizhi Fuling Pills (GFP), a classical Traditional Chinese Medicine (TCM) formula, has been shown to exert protective effects on cognitive function. However, its underlying mechanisms remain unclear.
OBJECTIVE: To investigate the effects of GFP on AD-like cognitive impairment and elucidate its underlying mechanisms.
METHODS: D-galactose (D-gal)-induced aged mice were used as the model. Mice were administered via gavage for 4 weeks with 0.9% normal saline (0.1 mL/10 g/d), low-dose GFP (12.56 g/kg/d), medium-dose GFP (25.11 g/kg/d), high-dose GFP (50.22 g/kg/d), and donepezil (5 mg/kg/d). A behavioral test was conducted using the Morris water maze. Histopathological changes were observed via H&E staining and immunohistochemistry (IHC). In addition, various methods such as transcriptomics, metabolomics, network pharmacology, and analysis of gut microbiota were utilized to elucidate the possible mechanisms.
RESULTS: Guizhi Fuling Pills improved learning and memory function in aged mice, ameliorated hippocampal neuronal morphology, and reduced p-Tau protein deposition. Network pharmacology and hippocampal transcriptomic analyses suggested that the active components in GFP may ameliorate cognitive impairment through multiple mechanisms. It included regulation of the VEGF and PI3K/AKT signaling pathways, attenuation of inflammatory responses, inhibition of apoptosis, and repair of the blood-brain barrier (BBB). Gut microbiota analysis revealed that GFP modulated the compositional structure of the gut microbiota, including increasing the abundance of Lactobacillales and decreasing Desulfovibrionia and Tannerellaceae. Metabolomics suggested that GFP may ameliorate metabolic disorders in aged mice by modulating the synthesis of lipids and lipid-like molecules.
CONCLUSION: The findings of this study suggest that GFP may ameliorate cognitive dysfunction in AD-like cognitive impairment mice through multiple mechanisms, including repair of the BBB, attenuation of inflammatory responses, and modulation of the gut microbiota and metabolic disorders.
Additional Links: PMID-42661899
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661899,
year = {2026},
author = {Ma, L and Wang, J and Xu, Z and Huang, Z and Chen, K and Teng, X and Chen, M and Lin, S and Zhou, R},
title = {The molecular mechanisms of Guizhi Fuling Pills in ameliorating Alzheimer's disease-like cognitive impairment: insights from transcriptomics, metabolomics, and gut microbiome.},
journal = {Frontiers in aging neuroscience},
volume = {18},
number = {},
pages = {1839445},
pmid = {42661899},
issn = {1663-4365},
abstract = {BACKGROUND: Alzheimer's disease (AD)-like cognitive impairment, as a major type of cognitive disorder, has witnessed a sharp rise in prevalence. Therefore, there is an urgent need to develop effective therapeutic intervention measures. Guizhi Fuling Pills (GFP), a classical Traditional Chinese Medicine (TCM) formula, has been shown to exert protective effects on cognitive function. However, its underlying mechanisms remain unclear.
OBJECTIVE: To investigate the effects of GFP on AD-like cognitive impairment and elucidate its underlying mechanisms.
METHODS: D-galactose (D-gal)-induced aged mice were used as the model. Mice were administered via gavage for 4 weeks with 0.9% normal saline (0.1 mL/10 g/d), low-dose GFP (12.56 g/kg/d), medium-dose GFP (25.11 g/kg/d), high-dose GFP (50.22 g/kg/d), and donepezil (5 mg/kg/d). A behavioral test was conducted using the Morris water maze. Histopathological changes were observed via H&E staining and immunohistochemistry (IHC). In addition, various methods such as transcriptomics, metabolomics, network pharmacology, and analysis of gut microbiota were utilized to elucidate the possible mechanisms.
RESULTS: Guizhi Fuling Pills improved learning and memory function in aged mice, ameliorated hippocampal neuronal morphology, and reduced p-Tau protein deposition. Network pharmacology and hippocampal transcriptomic analyses suggested that the active components in GFP may ameliorate cognitive impairment through multiple mechanisms. It included regulation of the VEGF and PI3K/AKT signaling pathways, attenuation of inflammatory responses, inhibition of apoptosis, and repair of the blood-brain barrier (BBB). Gut microbiota analysis revealed that GFP modulated the compositional structure of the gut microbiota, including increasing the abundance of Lactobacillales and decreasing Desulfovibrionia and Tannerellaceae. Metabolomics suggested that GFP may ameliorate metabolic disorders in aged mice by modulating the synthesis of lipids and lipid-like molecules.
CONCLUSION: The findings of this study suggest that GFP may ameliorate cognitive dysfunction in AD-like cognitive impairment mice through multiple mechanisms, including repair of the BBB, attenuation of inflammatory responses, and modulation of the gut microbiota and metabolic disorders.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-28
A Scoping Review of Machine Learning-Based Prediction of Alzheimer's Disease Using Blood Biomarkers.
Biomedical engineering and computational biology, 17:11795972261481838.
BACKGROUND: Alzheimer's disease (AD) is a progressive neurodegenerative disorder of late life that causes cognitive and functional decline and substantial mortality. Machine learning (ML) is increasingly used to discover patterns in clinical and biomarker data that support earlier and more accurate AD detection.
OBJECTIVES: This scoping review addresses three core research questions. First, we investigate recent trends in using machine-learning techniques to detect Alzheimer's disease using blood biomarkers. Second, we identify the blood biomarkers involved in Alzheimer's detection and evaluate how machine learning has been applied to improve the diagnostic capabilities of these biomarkers. Third, we highlight significant challenges associated with using machine learning for blood biomarker data in Alzheimer's detection and examine proposed advancements or solutions to handle these problems.
METHODS: In June 2025, we searched six academic databases to identify relevant papers on blood biomarkers and ML methods for Alzheimer's Disease. Search queries were developed based on our predefined research questions. Papers were then screened using defined inclusion and exclusion criteria, where titles, abstracts, and full texts of articles were systematically reviewed.
RESULTS: Following the screening approach, we selected 36 papers that fulfilled our inclusion and exclusion criteria. Through careful examination, we classified blood biomarkers into four types: transcriptomics, proteomics, multi-omic biomarkers, and general elemental blood biomarkers. Across these studies, proteomic blood biomarkers consistently emerged as significant indicators for Alzheimer's disease, including Alpha-2-Macroglobulin (A2M), Apolipoprotein E (ApoE), Eotaxin-3 (EOT3), plasma phosphorylated tau (p-tau 181), and neurofilament light chain (NfL). Furthermore, we explored challenges such as small sample sizes, lack of standardization, heterogeneity, and data imbalance.
CONCLUSIONS: This review provides insights into how combining blood biomarkers with ML can enhance AD prediction. The review summarizes key challenges and identifies critical gaps for future research.
Additional Links: PMID-42661952
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42661952,
year = {2026},
author = {Bhatti, MHR and Aly, A and Khan, A and Awan, S},
title = {A Scoping Review of Machine Learning-Based Prediction of Alzheimer's Disease Using Blood Biomarkers.},
journal = {Biomedical engineering and computational biology},
volume = {17},
number = {},
pages = {11795972261481838},
pmid = {42661952},
issn = {1179-5972},
abstract = {BACKGROUND: Alzheimer's disease (AD) is a progressive neurodegenerative disorder of late life that causes cognitive and functional decline and substantial mortality. Machine learning (ML) is increasingly used to discover patterns in clinical and biomarker data that support earlier and more accurate AD detection.
OBJECTIVES: This scoping review addresses three core research questions. First, we investigate recent trends in using machine-learning techniques to detect Alzheimer's disease using blood biomarkers. Second, we identify the blood biomarkers involved in Alzheimer's detection and evaluate how machine learning has been applied to improve the diagnostic capabilities of these biomarkers. Third, we highlight significant challenges associated with using machine learning for blood biomarker data in Alzheimer's detection and examine proposed advancements or solutions to handle these problems.
METHODS: In June 2025, we searched six academic databases to identify relevant papers on blood biomarkers and ML methods for Alzheimer's Disease. Search queries were developed based on our predefined research questions. Papers were then screened using defined inclusion and exclusion criteria, where titles, abstracts, and full texts of articles were systematically reviewed.
RESULTS: Following the screening approach, we selected 36 papers that fulfilled our inclusion and exclusion criteria. Through careful examination, we classified blood biomarkers into four types: transcriptomics, proteomics, multi-omic biomarkers, and general elemental blood biomarkers. Across these studies, proteomic blood biomarkers consistently emerged as significant indicators for Alzheimer's disease, including Alpha-2-Macroglobulin (A2M), Apolipoprotein E (ApoE), Eotaxin-3 (EOT3), plasma phosphorylated tau (p-tau 181), and neurofilament light chain (NfL). Furthermore, we explored challenges such as small sample sizes, lack of standardization, heterogeneity, and data imbalance.
CONCLUSIONS: This review provides insights into how combining blood biomarkers with ML can enhance AD prediction. The review summarizes key challenges and identifies critical gaps for future research.},
}
RevDate: 2026-08-28
Benzothiazole-driven molecular probes and therapeutics for neurodegenerative diseases: focus on amyloid-beta (Aβ), tau, and α-synuclein.
RSC medicinal chemistry [Epub ahead of print].
Neurodegenerative disorders, particularly Alzheimer's disease (AD) and Parkinson's disease (PD), represent a rapidly growing global health challenge characterized by progressive neuronal loss, irreversible cognitive decline, and the absence of effective disease-modifying therapies. A major obstacle in the clinical management of these disorders is the inability to accurately diagnose pathological changes at early stages, when therapeutic intervention is most likely to be effective. The pathological aggregation of amyloid-β (Aβ), hyperphosphorylated tau, and α-synuclein (α-syn) constitutes a central molecular hallmark of neurodegeneration and has therefore emerged as a critical target for both diagnostic imaging and therapeutic intervention. Among the numerous heterocyclic scaffolds investigated for central nervous system drug discovery, benzothiazole (BZT) has attracted exceptional attention owing to its favorable blood-brain barrier permeability, synthetic versatility, and intrinsic affinity toward β-sheet-rich protein aggregates. The clinical success of Pittsburgh compound-B (PiB) established BZT as a privileged molecular recognition motif for in vivo visualization of amyloid pathology and stimulated extensive medicinal chemistry efforts toward the development of next-generation imaging probes. More recently, advances in structure-guided design and multitarget-directed ligand (MTDL) strategies have transformed BZT from a purely diagnostic scaffold into a versatile theranostic platform capable of simultaneously recognizing and modulating neurodegenerative proteinopathies. Between 2020 and 2026, a wide range of structurally diverse BZT-based derivatives and hybrid molecules have been reported with improved affinity, selectivity, and sensitivity toward Aβ plaques, tau fibrils, and α-synuclein aggregates, while also exhibiting therapeutic activities such as inhibition of protein aggregation, fibril destabilization, cholinesterase inhibition, monoamine oxidase modulation, antioxidant activity, metal chelation, mitochondrial protection, and neuroinflammation suppression. This review provides a comprehensive overview of recent advances (2020-2026) in the design, synthesis, structure-activity relationships, molecular mechanisms, diagnostic applications, and therapeutic potential of BZT-based agents for neurodegenerative disorders. Particular emphasis is placed on the molecular basis of BZT recognition of amyloidogenic proteins, the evolution of diagnostic probes into multifunctional therapeutic hybrids, and emerging theranostic strategies targeting interconnected pathological pathways associated with AD, PD, and related proteinopathies. Furthermore, key trends in medicinal chemistry, translational challenges, and future opportunities for the development of next-generation BZT-derived diagnostics and therapeutics are critically discussed. Collectively, the evidence highlights BZT as one of the most promising privileged scaffolds for integrating early diagnosis, disease monitoring, and disease-modifying intervention within a unified molecular framework for neurodegenerative disorders.
Additional Links: PMID-42662146
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42662146,
year = {2026},
author = {Kumar, N and Khan, I and Singh, J and Kumar, K and Kushwaha, VK and Kumar, S and Ojha, S and Dash, AK and Shankar, G},
title = {Benzothiazole-driven molecular probes and therapeutics for neurodegenerative diseases: focus on amyloid-beta (Aβ), tau, and α-synuclein.},
journal = {RSC medicinal chemistry},
volume = {},
number = {},
pages = {},
pmid = {42662146},
issn = {2632-8682},
abstract = {Neurodegenerative disorders, particularly Alzheimer's disease (AD) and Parkinson's disease (PD), represent a rapidly growing global health challenge characterized by progressive neuronal loss, irreversible cognitive decline, and the absence of effective disease-modifying therapies. A major obstacle in the clinical management of these disorders is the inability to accurately diagnose pathological changes at early stages, when therapeutic intervention is most likely to be effective. The pathological aggregation of amyloid-β (Aβ), hyperphosphorylated tau, and α-synuclein (α-syn) constitutes a central molecular hallmark of neurodegeneration and has therefore emerged as a critical target for both diagnostic imaging and therapeutic intervention. Among the numerous heterocyclic scaffolds investigated for central nervous system drug discovery, benzothiazole (BZT) has attracted exceptional attention owing to its favorable blood-brain barrier permeability, synthetic versatility, and intrinsic affinity toward β-sheet-rich protein aggregates. The clinical success of Pittsburgh compound-B (PiB) established BZT as a privileged molecular recognition motif for in vivo visualization of amyloid pathology and stimulated extensive medicinal chemistry efforts toward the development of next-generation imaging probes. More recently, advances in structure-guided design and multitarget-directed ligand (MTDL) strategies have transformed BZT from a purely diagnostic scaffold into a versatile theranostic platform capable of simultaneously recognizing and modulating neurodegenerative proteinopathies. Between 2020 and 2026, a wide range of structurally diverse BZT-based derivatives and hybrid molecules have been reported with improved affinity, selectivity, and sensitivity toward Aβ plaques, tau fibrils, and α-synuclein aggregates, while also exhibiting therapeutic activities such as inhibition of protein aggregation, fibril destabilization, cholinesterase inhibition, monoamine oxidase modulation, antioxidant activity, metal chelation, mitochondrial protection, and neuroinflammation suppression. This review provides a comprehensive overview of recent advances (2020-2026) in the design, synthesis, structure-activity relationships, molecular mechanisms, diagnostic applications, and therapeutic potential of BZT-based agents for neurodegenerative disorders. Particular emphasis is placed on the molecular basis of BZT recognition of amyloidogenic proteins, the evolution of diagnostic probes into multifunctional therapeutic hybrids, and emerging theranostic strategies targeting interconnected pathological pathways associated with AD, PD, and related proteinopathies. Furthermore, key trends in medicinal chemistry, translational challenges, and future opportunities for the development of next-generation BZT-derived diagnostics and therapeutics are critically discussed. Collectively, the evidence highlights BZT as one of the most promising privileged scaffolds for integrating early diagnosis, disease monitoring, and disease-modifying intervention within a unified molecular framework for neurodegenerative disorders.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-28
Distinct Effects of Copper Ionophores on Intracellular Copper and Cell Viability in Wild-Type and CTR1-Deficient SH-SY5Y Cells.
ACS omega, 11(33):49807-49814.
Copper homeostasis is essential for neuronal function, and its dysregulation has been implicated in neurodegenerative disorders. In particular, reduced intracellular copper levels alongside with elevated extracellular copper concentrations have been associated with Alzheimer's disease (AD). Therefore, strategies aimed at restoring intracellular copper levels represent a potential therapeutic approach. In this study, we investigated the effects of selected copper-binding compounds(?)α-lipoic acid (LA), elesclomol (ES), disulfiram (DSF), thiourea (TU), and triapine (3-AP)(?)on copper uptake and cytotoxicity in SH-SY5Y wild-type (WT) and CTR1-deficient (CTR1[-/-]) cells. Intracellular copper levels were quantified using inductively coupled plasma mass spectrometry (ICP-MS), and cell viability was assessed by using propidium iodide assay under various treatment conditions. Among the tested compounds, LA, ES, and DSF significantly increased intracellular copper levels in both WT and CTR1[-/-] cells, whereas TU and 3-AP did not enhance copper accumulation beyond copper-only treatment. Notably, CTR1[-/-] cells exhibited reduced sensitivity to copper-associated toxicity compared to WT cells. Under copper-supplemented conditions, DSF and ES displayed concentration-dependent cytotoxicity, while LA and TU induced only mild effects. In contrast, 3-AP toxicity was abolished in the presence of copper. Furthermore, cotreatment with LA and copper increased cell proliferation and promoted differentiation-associated morphological changes in CTR1[-/-] cells. Overall, our results demonstrate that copper ionophores can enhance intracellular copper levels dependently and independently of CTR1, with distinct effects on cell viability. Among the tested compounds, LA and DSF showed a favorable profile by increasing copper levels while maintaining low cytotoxicity, highlighting their potential for modulating cellular copper homeostasis.
Additional Links: PMID-42662336
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42662336,
year = {2026},
author = {Reinapu, A and Kirss, S and Tõugu, V and Palumaa, P},
title = {Distinct Effects of Copper Ionophores on Intracellular Copper and Cell Viability in Wild-Type and CTR1-Deficient SH-SY5Y Cells.},
journal = {ACS omega},
volume = {11},
number = {33},
pages = {49807-49814},
pmid = {42662336},
issn = {2470-1343},
abstract = {Copper homeostasis is essential for neuronal function, and its dysregulation has been implicated in neurodegenerative disorders. In particular, reduced intracellular copper levels alongside with elevated extracellular copper concentrations have been associated with Alzheimer's disease (AD). Therefore, strategies aimed at restoring intracellular copper levels represent a potential therapeutic approach. In this study, we investigated the effects of selected copper-binding compounds(?)α-lipoic acid (LA), elesclomol (ES), disulfiram (DSF), thiourea (TU), and triapine (3-AP)(?)on copper uptake and cytotoxicity in SH-SY5Y wild-type (WT) and CTR1-deficient (CTR1[-/-]) cells. Intracellular copper levels were quantified using inductively coupled plasma mass spectrometry (ICP-MS), and cell viability was assessed by using propidium iodide assay under various treatment conditions. Among the tested compounds, LA, ES, and DSF significantly increased intracellular copper levels in both WT and CTR1[-/-] cells, whereas TU and 3-AP did not enhance copper accumulation beyond copper-only treatment. Notably, CTR1[-/-] cells exhibited reduced sensitivity to copper-associated toxicity compared to WT cells. Under copper-supplemented conditions, DSF and ES displayed concentration-dependent cytotoxicity, while LA and TU induced only mild effects. In contrast, 3-AP toxicity was abolished in the presence of copper. Furthermore, cotreatment with LA and copper increased cell proliferation and promoted differentiation-associated morphological changes in CTR1[-/-] cells. Overall, our results demonstrate that copper ionophores can enhance intracellular copper levels dependently and independently of CTR1, with distinct effects on cell viability. Among the tested compounds, LA and DSF showed a favorable profile by increasing copper levels while maintaining low cytotoxicity, highlighting their potential for modulating cellular copper homeostasis.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-28
Clinical impact of amyloid PET in memory clinic: A 2-year longitudinal real-world study in Taiwan.
Alzheimer's & dementia (Amsterdam, Netherlands), 18(3):e70454.
INTRODUCTION: Longitudinal evidence on amyloid positron emission tomography (PET) for Alzheimer's disease (AD) diagnosis in Taiwan and Asian memory clinics remains limited. This study evaluated the diagnostic and prognostic impact of florbetaben PET in a Taiwanese cohort.
METHODS: This prospective cohort study enrolled 206 memory clinic participants who underwent florbetaben amyloid PET, volumetric magnetic resonance imaging, apolipoprotein E genotyping, and neuropsychological assessment, with 2-year longitudinal follow-up.
RESULTS: Amyloid positivity was present in 48% of participants and drove diagnostic reclassification in 49.5% of the cohort. Receiver operating characteristic curve analysis identified an optimal Centiloid (CL) threshold of 21.60 (sensitivity 91.18%, specificity 99.04%, area under the curve [AUC] = 0.98). Amygdala, inferior parietal, and superior temporal atrophy were strong structural predictors of amyloid positivity (AUC = 0.79).
DISCUSSION: These findings establish a locally validated amyloid threshold and provide actionable diagnostic and prognostic stratification in a real-world Asian memory clinic.
Additional Links: PMID-42662502
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42662502,
year = {2026},
author = {Chou, CJ and Chuang, YF and Chiu, YL and Wu, SC and Fan, YM and Liu, YC},
title = {Clinical impact of amyloid PET in memory clinic: A 2-year longitudinal real-world study in Taiwan.},
journal = {Alzheimer's & dementia (Amsterdam, Netherlands)},
volume = {18},
number = {3},
pages = {e70454},
pmid = {42662502},
issn = {2352-8729},
abstract = {INTRODUCTION: Longitudinal evidence on amyloid positron emission tomography (PET) for Alzheimer's disease (AD) diagnosis in Taiwan and Asian memory clinics remains limited. This study evaluated the diagnostic and prognostic impact of florbetaben PET in a Taiwanese cohort.
METHODS: This prospective cohort study enrolled 206 memory clinic participants who underwent florbetaben amyloid PET, volumetric magnetic resonance imaging, apolipoprotein E genotyping, and neuropsychological assessment, with 2-year longitudinal follow-up.
RESULTS: Amyloid positivity was present in 48% of participants and drove diagnostic reclassification in 49.5% of the cohort. Receiver operating characteristic curve analysis identified an optimal Centiloid (CL) threshold of 21.60 (sensitivity 91.18%, specificity 99.04%, area under the curve [AUC] = 0.98). Amygdala, inferior parietal, and superior temporal atrophy were strong structural predictors of amyloid positivity (AUC = 0.79).
DISCUSSION: These findings establish a locally validated amyloid threshold and provide actionable diagnostic and prognostic stratification in a real-world Asian memory clinic.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-28
Self-Emulsifying Formulation of Huperzia carinata Extract to Improve Huperzine A Solubility for Therapeutic Efficacy Enhancement in Parkinsonian Mice.
ACS omega, 11(33):49717-49732.
Huperzine A (HupA), a sesquiterpene alkaloid isolated from Huperzia serrata, is clinically applied in China for Alzheimer's disease and in the United States as a dietary supplement. In Thailand, Huperzia carinata (H. carinata) is an alternative and the richest natural source of HupA. However, poor solubility and low oral bioavailability restrict its therapeutic application. This study aimed to develop a self-emulsifying drug delivery system (SEDDS) to improve the solubility, dissolution, and efficacy of HupA from H. carinata extract in a mouse model of Parkinson's disease (PD). The optimized SEDDS consisted of oleic acid (20%), polyethylene glycol-40 hydrogenated castor oil (70%), and propylene glycol (10%), containing 10% H. carinata extract. The HupA-loaded SEDDS displayed efficient self-emulsification, producing droplet sizes of 175.2 ± 8.3 nm to 253.4 ± 2.8 nm upon dilution in water. The SEDDS promoted rapid dissolution, achieving approximately 70% HupA release within 5 min and near-complete dissolution (100%) by 120 min in both gastric and intestinal media. In vitro, the SEDDS displayed significantly superior antioxidant and anti-inflammatory activities compared with the unformulated extract (p < 0.001). In vivo, MPTP-induced Parkinsonian mice receiving SEDDS containing HupA (0.75 and 1.00 μmol/kg body weight) showed significant improvements in locomotor function and motor coordination compared with both vehicle- and blank-SEDDS-treated groups (p < 0.001) at days 3 and 7 after MPTP induction. Biochemical assessments revealed declined malondialdehyde and nitrite levels in cortical and striatal brain tissues compared with the vehicle- and blank-SEDDS-treated groups (p < 0.05). Molecular studies confirmed that HupA-loaded SEDDS increased tyrosine hydroxylase and decreased tumor necrosis factor-α expression compared with the vehicle-treated group (p < 0.001) while protecting dopaminergic neurons in immunohistochemistry, indicating neuroprotective and antineuroinflammatory effects. The SEDDS formulation may represent a promising drug delivery system for the clinical application of HupA in PD and potentially other neurodegenerative disorders. This study contributes to Sustainable Development Goal 3 (good health and well-being) by developing neuroprotective formulations for neurodegenerative diseases.
Additional Links: PMID-42662738
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42662738,
year = {2026},
author = {Sermkaew, N and Songnaka, N and Masraksa, W and Jaisi, A and Yongyuen, Y and Buntha, P and Nor Azman, NS and Jomrit, J and Boonruamkaew, P},
title = {Self-Emulsifying Formulation of Huperzia carinata Extract to Improve Huperzine A Solubility for Therapeutic Efficacy Enhancement in Parkinsonian Mice.},
journal = {ACS omega},
volume = {11},
number = {33},
pages = {49717-49732},
pmid = {42662738},
issn = {2470-1343},
abstract = {Huperzine A (HupA), a sesquiterpene alkaloid isolated from Huperzia serrata, is clinically applied in China for Alzheimer's disease and in the United States as a dietary supplement. In Thailand, Huperzia carinata (H. carinata) is an alternative and the richest natural source of HupA. However, poor solubility and low oral bioavailability restrict its therapeutic application. This study aimed to develop a self-emulsifying drug delivery system (SEDDS) to improve the solubility, dissolution, and efficacy of HupA from H. carinata extract in a mouse model of Parkinson's disease (PD). The optimized SEDDS consisted of oleic acid (20%), polyethylene glycol-40 hydrogenated castor oil (70%), and propylene glycol (10%), containing 10% H. carinata extract. The HupA-loaded SEDDS displayed efficient self-emulsification, producing droplet sizes of 175.2 ± 8.3 nm to 253.4 ± 2.8 nm upon dilution in water. The SEDDS promoted rapid dissolution, achieving approximately 70% HupA release within 5 min and near-complete dissolution (100%) by 120 min in both gastric and intestinal media. In vitro, the SEDDS displayed significantly superior antioxidant and anti-inflammatory activities compared with the unformulated extract (p < 0.001). In vivo, MPTP-induced Parkinsonian mice receiving SEDDS containing HupA (0.75 and 1.00 μmol/kg body weight) showed significant improvements in locomotor function and motor coordination compared with both vehicle- and blank-SEDDS-treated groups (p < 0.001) at days 3 and 7 after MPTP induction. Biochemical assessments revealed declined malondialdehyde and nitrite levels in cortical and striatal brain tissues compared with the vehicle- and blank-SEDDS-treated groups (p < 0.05). Molecular studies confirmed that HupA-loaded SEDDS increased tyrosine hydroxylase and decreased tumor necrosis factor-α expression compared with the vehicle-treated group (p < 0.001) while protecting dopaminergic neurons in immunohistochemistry, indicating neuroprotective and antineuroinflammatory effects. The SEDDS formulation may represent a promising drug delivery system for the clinical application of HupA in PD and potentially other neurodegenerative disorders. This study contributes to Sustainable Development Goal 3 (good health and well-being) by developing neuroprotective formulations for neurodegenerative diseases.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-28
Single-nucleus transcriptomics reveals cell type-specific remodeling and epilepsy-associated microglia.
iScience, 29(9):117228.
Temporal lobe epilepsy (TLE) is the most common acquired epilepsy, causing refractory seizures and cognitive deficits. We performed single-nucleus RNA sequencing on hippocampal tissue from mice 3 and 6 weeks following pilocarpine-induced status epilepticus, a robust model of TLE. Epilepsy samples showed reductions in Cck and Lamp5-Lhx6 interneuron subclusters, alongside increases in Cajal-Retzius cells, dentate granule (DG) cell precursors, and a mature DG cell subcluster. Among glia, an astrocyte subcluster and a markedly expanded microglia sublcuster were increased. We term this microglia population epilepsy-associated microglia (EAM). The transcriptomic profile of EAM overlaps with microglia described in models of Alzheimer's disease and traumatic brain injury, including enrichment of Myo1e and Igf1. EAM display amoeboid morphology, can be found in clumps around pyramidal and granule cell body layers, and exhibit enlarged vesicles and mitochondria. Cell-cell interaction analysis predicts DG cells as their primary interaction partners. This dataset defines transcriptomic programs underlying key cellular alterations in TLE, enabling mechanistic dissection of epileptogenesis.
Additional Links: PMID-42662868
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42662868,
year = {2026},
author = {Ho, V and Tjondropurnomo, R and Nguyen, J and Balkó, E and Depew, S and Chen, X and Singh, R and van Veen, JE and Rácz, B and Golshani, P},
title = {Single-nucleus transcriptomics reveals cell type-specific remodeling and epilepsy-associated microglia.},
journal = {iScience},
volume = {29},
number = {9},
pages = {117228},
pmid = {42662868},
issn = {2589-0042},
abstract = {Temporal lobe epilepsy (TLE) is the most common acquired epilepsy, causing refractory seizures and cognitive deficits. We performed single-nucleus RNA sequencing on hippocampal tissue from mice 3 and 6 weeks following pilocarpine-induced status epilepticus, a robust model of TLE. Epilepsy samples showed reductions in Cck and Lamp5-Lhx6 interneuron subclusters, alongside increases in Cajal-Retzius cells, dentate granule (DG) cell precursors, and a mature DG cell subcluster. Among glia, an astrocyte subcluster and a markedly expanded microglia sublcuster were increased. We term this microglia population epilepsy-associated microglia (EAM). The transcriptomic profile of EAM overlaps with microglia described in models of Alzheimer's disease and traumatic brain injury, including enrichment of Myo1e and Igf1. EAM display amoeboid morphology, can be found in clumps around pyramidal and granule cell body layers, and exhibit enlarged vesicles and mitochondria. Cell-cell interaction analysis predicts DG cells as their primary interaction partners. This dataset defines transcriptomic programs underlying key cellular alterations in TLE, enabling mechanistic dissection of epileptogenesis.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-28
Transcriptomic analysis reveals and validates lipid raft-associated biomarkers and functional networks in Alzheimer's disease.
IBRO neuroscience reports, 21:625-638.
Alzheimer's disease (AD) involves complex changes, including synaptic dysfunction, neuroinflammation, and metabolic impairment, yet the role of lipid raft-associated gene networks in these processes remains unclear. In this study, we performed an integrative transcriptomic analysis using the GSE5281 dataset and validated the findings in an independent cohort (GSE33000). By combining differential expression analysis with weighted gene co-expression network analysis, we identified 72 lipid raft-associated genes linked to mitochondrial, synaptic, and immune-related pathways. Using network analysis and machine learning approaches (LASSO and SHAP), we further identified eight key biomarkers (CBL, CD44, EZR, FAS, FYN, ITGB1, MAPK1, and TGFBR1) that showed strong diagnostic performance and consistent results across datasets. Functional analysis revealed increased inflammatory signaling, including pyroptosis and cytokine pathways, alongside reduced oxidative phosphorylation and synaptic activity. Interestingly, immune profiling showed only minor differences in immune cell infiltration, but clear activation of multiple immune pathways, such as Th2 and Treg signaling, CD8[+] T-cell signatures, and IL-6/IL-10-mediated inflammation. These immune changes were strongly associated with lipid raft-related biomarkers. Overall, our findings suggest that lipid raft dysregulation may act as a key link between immune activation, mitochondrial dysfunction, and synaptic impairment in AD.
Additional Links: PMID-42662874
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42662874,
year = {2026},
author = {Hsu, CH and Jallow, AW and Saleem, F and Chau Vu, TM and Lin, YF},
title = {Transcriptomic analysis reveals and validates lipid raft-associated biomarkers and functional networks in Alzheimer's disease.},
journal = {IBRO neuroscience reports},
volume = {21},
number = {},
pages = {625-638},
pmid = {42662874},
issn = {2667-2421},
abstract = {Alzheimer's disease (AD) involves complex changes, including synaptic dysfunction, neuroinflammation, and metabolic impairment, yet the role of lipid raft-associated gene networks in these processes remains unclear. In this study, we performed an integrative transcriptomic analysis using the GSE5281 dataset and validated the findings in an independent cohort (GSE33000). By combining differential expression analysis with weighted gene co-expression network analysis, we identified 72 lipid raft-associated genes linked to mitochondrial, synaptic, and immune-related pathways. Using network analysis and machine learning approaches (LASSO and SHAP), we further identified eight key biomarkers (CBL, CD44, EZR, FAS, FYN, ITGB1, MAPK1, and TGFBR1) that showed strong diagnostic performance and consistent results across datasets. Functional analysis revealed increased inflammatory signaling, including pyroptosis and cytokine pathways, alongside reduced oxidative phosphorylation and synaptic activity. Interestingly, immune profiling showed only minor differences in immune cell infiltration, but clear activation of multiple immune pathways, such as Th2 and Treg signaling, CD8[+] T-cell signatures, and IL-6/IL-10-mediated inflammation. These immune changes were strongly associated with lipid raft-related biomarkers. Overall, our findings suggest that lipid raft dysregulation may act as a key link between immune activation, mitochondrial dysfunction, and synaptic impairment in AD.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-28
The Shifting Treatment Landscape for Alzheimer's Disease in Primary Care.
Federal practitioner : for the health care professionals of the VA, DoD, and PHS, 42(Suppl5):S37-S42.
Additional Links: PMID-42662931
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42662931,
year = {2025},
author = {Davis, L and Obisesan, T},
title = {The Shifting Treatment Landscape for Alzheimer's Disease in Primary Care.},
journal = {Federal practitioner : for the health care professionals of the VA, DoD, and PHS},
volume = {42},
number = {Suppl5},
pages = {S37-S42},
pmid = {42662931},
issn = {1078-4497},
}
RevDate: 2026-08-28
Age-Dependent and APOE-Modified Associations Between Vascular Risk Factor Patterns and Cognitive Function: A Latent Class Analysis of 44,879 NACC Participants.
Alzheimer disease and associated disorders [Epub ahead of print].
INTRODUCTION: Vascular risk factors (VRFs) are established contributors to cognitive decline, yet they often co-occur in distinct patterns. Whether VRF pattern-cognition associations are modified by age or apolipoprotein E (APOE) genotype remains unclear.
METHODS: We analyzed 44,879 participants aged 60 to 90 years from the National Alzheimer's Coordinating Center (NACC) with normal cognition or mild cognitive impairment (MCI). Latent class analysis (LCA) identified VRF patterns from 7 indicators: hypertension, diabetes, hypercholesterolemia, myocardial infarction, atrial fibrillation, heart failure, and stroke. Multivariable linear regression examined associations between VRF patterns and Mini-Mental State Examination (MMSE) scores, with stratification by age and APOE ε4 status.
RESULTS: Five VRF patterns were identified: Low Risk (38.4%), Metabolic Predominant (40.5%), Hypertension Predominant (16.0%), Arrhythmia-Cardiac (2.7%), and High Multimorbidity (2.4%). Each additional VRF was associated with 0.056-point lower MMSE (β=-0.056, 95% CI: -0.072 to -0.039, P<0.001). Significant age × pattern (P=0.0015) and APOE × pattern (P=0.0016) interactions emerged. In younger-old adults (60 to 74 y), Metabolic Predominant was associated with lower MMSE (β=-0.171, P<0.001), but not in older-old adults (75 to 90 y; β=0.020, P=0.53). Among APOE ε4 carriers, the Metabolic Predominant association was substantially stronger (β=-0.228, P<0.001) compared with noncarriers (β=-0.053, P=0.025), a 4.3-fold difference in magnitude.
CONCLUSIONS: VRF-cognition associations show significant heterogeneity by age and APOE genotype. Attenuated associations in older-old adults may reflect survivor bias, while stronger associations in APOE ε4 carriers are consistent with gene-environment interactions.
Additional Links: PMID-42663119
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42663119,
year = {2026},
author = {Kong, Y and Li, X and Guan, R and Wang, X and Chen, A and Zhang, H},
title = {Age-Dependent and APOE-Modified Associations Between Vascular Risk Factor Patterns and Cognitive Function: A Latent Class Analysis of 44,879 NACC Participants.},
journal = {Alzheimer disease and associated disorders},
volume = {},
number = {},
pages = {},
pmid = {42663119},
issn = {1546-4156},
abstract = {INTRODUCTION: Vascular risk factors (VRFs) are established contributors to cognitive decline, yet they often co-occur in distinct patterns. Whether VRF pattern-cognition associations are modified by age or apolipoprotein E (APOE) genotype remains unclear.
METHODS: We analyzed 44,879 participants aged 60 to 90 years from the National Alzheimer's Coordinating Center (NACC) with normal cognition or mild cognitive impairment (MCI). Latent class analysis (LCA) identified VRF patterns from 7 indicators: hypertension, diabetes, hypercholesterolemia, myocardial infarction, atrial fibrillation, heart failure, and stroke. Multivariable linear regression examined associations between VRF patterns and Mini-Mental State Examination (MMSE) scores, with stratification by age and APOE ε4 status.
RESULTS: Five VRF patterns were identified: Low Risk (38.4%), Metabolic Predominant (40.5%), Hypertension Predominant (16.0%), Arrhythmia-Cardiac (2.7%), and High Multimorbidity (2.4%). Each additional VRF was associated with 0.056-point lower MMSE (β=-0.056, 95% CI: -0.072 to -0.039, P<0.001). Significant age × pattern (P=0.0015) and APOE × pattern (P=0.0016) interactions emerged. In younger-old adults (60 to 74 y), Metabolic Predominant was associated with lower MMSE (β=-0.171, P<0.001), but not in older-old adults (75 to 90 y; β=0.020, P=0.53). Among APOE ε4 carriers, the Metabolic Predominant association was substantially stronger (β=-0.228, P<0.001) compared with noncarriers (β=-0.053, P=0.025), a 4.3-fold difference in magnitude.
CONCLUSIONS: VRF-cognition associations show significant heterogeneity by age and APOE genotype. Attenuated associations in older-old adults may reflect survivor bias, while stronger associations in APOE ε4 carriers are consistent with gene-environment interactions.},
}
RevDate: 2026-08-28
CmpDate: 2026-08-28
Research progress on BTG2 in non‑tumor diseases (Review).
International journal of molecular medicine, 58(5):.
The B‑cell translocation gene 2 (BTG2), originally identified as a tumor suppressor, has been extensively studied in oncology research. However, its multifaceted functions in non‑tumor diseases are still being recognized but not entirely understood. This review systematically synthesizes advances in the pivotal, context‑dependent roles of BTG2 in non‑tumor pathologies, including fibrotic, neurological, cardiovascular, inflammatory, metabolic and other systemic diseases. BTG2 is not merely a binary regulator but a context‑sensitive molecular hub. Specific disease microenvironments, cell types and pathological stages contribute to its biological impact, whether protective or pathogenic. For instance, BTG2 promotes protective microglial activation in Alzheimer's disease while exacerbating neuronal death in acute spinal cord injury. Mechanistically, BTG2 influences cell fate decisions involving apoptosis, senescence, inflammation and metabolism by integrating signals from various pathways at the intersection of major regulatory networks, such as the neuro‑immune‑epigenetic axis and the metabolic‑epigenetic‑fibrosis network. It has emerged as a promising dual‑purpose biomarker for disease diagnosis and prognosis, as well as a potential therapeutic target, owing to its dose‑sensitive expression and regulatory position. However, because of its functional duality, therapeutic targeting necessitates precise, context‑specific strategies. This review offers a novel, integrative perspective on BTG2 in non‑tumor biology, underscoring its implication as a key regulatory node with extensive translational potential.
Additional Links: PMID-42663296
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42663296,
year = {2026},
author = {Li, S and Liu, X and Zhang, Z and Yang, L and Li, Y and Hu, Q},
title = {Research progress on BTG2 in non‑tumor diseases (Review).},
journal = {International journal of molecular medicine},
volume = {58},
number = {5},
pages = {},
doi = {10.3892/ijmm.2026.5970},
pmid = {42663296},
issn = {1791-244X},
mesh = {Humans ; *Tumor Suppressor Proteins/metabolism/genetics ; *Immediate-Early Proteins/metabolism/genetics ; Animals ; },
abstract = {The B‑cell translocation gene 2 (BTG2), originally identified as a tumor suppressor, has been extensively studied in oncology research. However, its multifaceted functions in non‑tumor diseases are still being recognized but not entirely understood. This review systematically synthesizes advances in the pivotal, context‑dependent roles of BTG2 in non‑tumor pathologies, including fibrotic, neurological, cardiovascular, inflammatory, metabolic and other systemic diseases. BTG2 is not merely a binary regulator but a context‑sensitive molecular hub. Specific disease microenvironments, cell types and pathological stages contribute to its biological impact, whether protective or pathogenic. For instance, BTG2 promotes protective microglial activation in Alzheimer's disease while exacerbating neuronal death in acute spinal cord injury. Mechanistically, BTG2 influences cell fate decisions involving apoptosis, senescence, inflammation and metabolism by integrating signals from various pathways at the intersection of major regulatory networks, such as the neuro‑immune‑epigenetic axis and the metabolic‑epigenetic‑fibrosis network. It has emerged as a promising dual‑purpose biomarker for disease diagnosis and prognosis, as well as a potential therapeutic target, owing to its dose‑sensitive expression and regulatory position. However, because of its functional duality, therapeutic targeting necessitates precise, context‑specific strategies. This review offers a novel, integrative perspective on BTG2 in non‑tumor biology, underscoring its implication as a key regulatory node with extensive translational potential.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
*Tumor Suppressor Proteins/metabolism/genetics
*Immediate-Early Proteins/metabolism/genetics
Animals
RevDate: 2026-08-28
AGG repeat expansion and aggregation of BIN1 in multiple system atrophy.
Brain : a journal of neurology pii:8772328 [Epub ahead of print].
Multiple system atrophy is a fatal, sporadic α-synucleinopathy characterized by glial cytoplasmic inclusions in oligodendrocytes. No causative gene for multiple system atrophy has been identified to date. Whole-genome sequencing was performed for a patient with familial multiple system atrophy, in whom an AGG repeat expansion in BIN1 was identified. Based on this finding, we screened for the AGG repeat expansion in BIN1 in a cohort comprising 224 patients with clinically diagnosed multiple system atrophy, 67 patients with pathologically confirmed multiple system atrophy, and control groups including 574 blood samples and 65 brain samples from neurologically healthy individuals. The pathological analysis was performed for four cases with the repeat expansion and five cases without the repeat expansion. The biochemical analysis was performed for nine control subjects, ten cases without the repeat expansion, and eight cases with the repeat expansion. Long-read sequencing identified an AGG repeat expansion in the first intron of BIN1 in the proband. Patients with multiple system atrophy carried a higher frequency of repeat expansions exceeding 80 repeats in the pathological multiple system atrophy group compared to the brain control group (frequency: 13.4% vs. 0%; odds ratio: infinity; 95% confidence interval [CI], 2.1 to infinity; P = 0.003, Fisher's exact test). In contrast, the difference of frequency did not reach statistical significance in the clinical multiple system atrophy group compared to the blood control group (frequency: 4.5% vs 2.4%; odds ratio: 1.87; 95% CI, 0.8 to 4.5; P = 0.16, Fisher's exact test). Neuropathological analysis revealed BIN1-positive glial cytoplasmic inclusions more frequently in the brains of patients with repeat expansions. In immunoblot analysis, insoluble BIN1 were increased in the brains of multiple system atrophy irrespective of repeat status. Our findings indicate that the AGG repeat expansion in BIN1 and BIN1 protein aggregation plays an important role in the pathogenesis of multiple system atrophy.
Additional Links: PMID-42663379
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42663379,
year = {2026},
author = {Kume, K and Kurashige, T and Itabashi, T and Akagi, A and Ando, T and Nakamura, M and Kikumoto, M and Tamada, A and Kamada, M and Ayaki, T and Izumi, Y and Yabe, I and Muguruma, K and Miyamoto, T and Iwasaki, Y and Kawakami, H},
title = {AGG repeat expansion and aggregation of BIN1 in multiple system atrophy.},
journal = {Brain : a journal of neurology},
volume = {},
number = {},
pages = {},
doi = {10.1093/brain/awag194},
pmid = {42663379},
issn = {1460-2156},
abstract = {Multiple system atrophy is a fatal, sporadic α-synucleinopathy characterized by glial cytoplasmic inclusions in oligodendrocytes. No causative gene for multiple system atrophy has been identified to date. Whole-genome sequencing was performed for a patient with familial multiple system atrophy, in whom an AGG repeat expansion in BIN1 was identified. Based on this finding, we screened for the AGG repeat expansion in BIN1 in a cohort comprising 224 patients with clinically diagnosed multiple system atrophy, 67 patients with pathologically confirmed multiple system atrophy, and control groups including 574 blood samples and 65 brain samples from neurologically healthy individuals. The pathological analysis was performed for four cases with the repeat expansion and five cases without the repeat expansion. The biochemical analysis was performed for nine control subjects, ten cases without the repeat expansion, and eight cases with the repeat expansion. Long-read sequencing identified an AGG repeat expansion in the first intron of BIN1 in the proband. Patients with multiple system atrophy carried a higher frequency of repeat expansions exceeding 80 repeats in the pathological multiple system atrophy group compared to the brain control group (frequency: 13.4% vs. 0%; odds ratio: infinity; 95% confidence interval [CI], 2.1 to infinity; P = 0.003, Fisher's exact test). In contrast, the difference of frequency did not reach statistical significance in the clinical multiple system atrophy group compared to the blood control group (frequency: 4.5% vs 2.4%; odds ratio: 1.87; 95% CI, 0.8 to 4.5; P = 0.16, Fisher's exact test). Neuropathological analysis revealed BIN1-positive glial cytoplasmic inclusions more frequently in the brains of patients with repeat expansions. In immunoblot analysis, insoluble BIN1 were increased in the brains of multiple system atrophy irrespective of repeat status. Our findings indicate that the AGG repeat expansion in BIN1 and BIN1 protein aggregation plays an important role in the pathogenesis of multiple system atrophy.},
}
RevDate: 2026-08-28
APOE ε4 and peripheral metabolic network architecture in older adults.
Journal of Alzheimer's disease : JAD [Epub ahead of print].
BackgroundWhether apolipoprotein E (APOE) ε4 status shapes the organization of modifiable peripheral metabolic risk pathways for dementia prevention remains unclear. Most prior studies have focused on individual APOE-by-biomarker interactions rather than the broader conditional dependency structure among metabolic variables.ObjectiveWe aimed to examine whether APOE ε4 is conditionally connected to metabolic factors and whether network architecture differs by genotype.MethodsIn 2454 participants from the Korean Longitudinal Study on Cognitive Aging and Dementia with complete data on 13 variables, conditional dependency networks were estimated using graphical least absolute shrinkage and selection operator models and mixed graphical models. Network Comparison Tests were used to compare 12-node metabolic networks between ε4 carriers and non-carriers. Cox proportional hazards models evaluated whether hub biomarkers predicted incident cognitive impairment over a median follow-up of 7.4 years and whether associations differed by APOE genotype.ResultsAPOE ε4 showed negligible conditional connectivity, with near-zero partial correlations in GLASSO (maximum |r| = 0.0114) and zero edge weights in mixed graphical models. The 12-node metabolic network did not differ significantly between carriers and non-carriers in either network structure (M = 0.1671, p = 0.45) or global strength (S = 2.3662, p = 0.46). Among 1922 baseline cognitively normal participants, 504 developed cognitive impairment during follow-up. Neither the APOE × homocysteine interaction (p = 0.921) nor the APOE × creatinine interaction (p = 0.402) was significant.ConclusionsAPOE ε4 was conditionally independent of the peripheral metabolic variables examined, with no major genotype-specific differences in network architecture. These findings highlight the importance of metabolic dementia prevention regardless of genotype, although interventional confirmation is warranted.
Additional Links: PMID-42663443
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42663443,
year = {2026},
author = {Oh, DJ and Han, JW and Kim, TH and Kwak, KP and Kim, BJ and Kim, SG and Kim, JL and Moon, SW and Park, JH and Ryu, SH and Lee, DW and Lee, SB and Lee, JJ and Jhoo, JH and Kim, KW},
title = {APOE ε4 and peripheral metabolic network architecture in older adults.},
journal = {Journal of Alzheimer's disease : JAD},
volume = {},
number = {},
pages = {13872877261476718},
doi = {10.1177/13872877261476718},
pmid = {42663443},
issn = {1875-8908},
abstract = {BackgroundWhether apolipoprotein E (APOE) ε4 status shapes the organization of modifiable peripheral metabolic risk pathways for dementia prevention remains unclear. Most prior studies have focused on individual APOE-by-biomarker interactions rather than the broader conditional dependency structure among metabolic variables.ObjectiveWe aimed to examine whether APOE ε4 is conditionally connected to metabolic factors and whether network architecture differs by genotype.MethodsIn 2454 participants from the Korean Longitudinal Study on Cognitive Aging and Dementia with complete data on 13 variables, conditional dependency networks were estimated using graphical least absolute shrinkage and selection operator models and mixed graphical models. Network Comparison Tests were used to compare 12-node metabolic networks between ε4 carriers and non-carriers. Cox proportional hazards models evaluated whether hub biomarkers predicted incident cognitive impairment over a median follow-up of 7.4 years and whether associations differed by APOE genotype.ResultsAPOE ε4 showed negligible conditional connectivity, with near-zero partial correlations in GLASSO (maximum |r| = 0.0114) and zero edge weights in mixed graphical models. The 12-node metabolic network did not differ significantly between carriers and non-carriers in either network structure (M = 0.1671, p = 0.45) or global strength (S = 2.3662, p = 0.46). Among 1922 baseline cognitively normal participants, 504 developed cognitive impairment during follow-up. Neither the APOE × homocysteine interaction (p = 0.921) nor the APOE × creatinine interaction (p = 0.402) was significant.ConclusionsAPOE ε4 was conditionally independent of the peripheral metabolic variables examined, with no major genotype-specific differences in network architecture. These findings highlight the importance of metabolic dementia prevention regardless of genotype, although interventional confirmation is warranted.},
}
RevDate: 2026-08-28
Network-based statistical mapping of structural covariance alterations in pathologically confirmed argyrophilic grain disease and Alzheimer's disease: An exploratory pilot study.
Journal of Alzheimer's disease : JAD [Epub ahead of print].
BackgroundAlthough neuroimaging differences from Alzheimer's disease (AD) in argyrophilic grain disease (AGD), a limbic-predominant 4-repeat tauopathy, have been evaluated, edge-wise alterations in structural similarity remain unexamined.ObjectiveAs an exploratory pilot study, to apply network-based statistics (NBS) to individualized structural covariance (ISC) matrices to identify morphological-similarity alterations in AGD and AD.MethodsWe analyzed 3D T1-weighted MRI from 13 pathologically confirmed AGD, 17 AD, and 18 healthy controls (HC). Gray-matter volumes from a 170-region atlas were used to compute ISC matrices. Between-group differences were assessed using NBS (threshold t = 3.5; 5000 permutations). Component strength was the sum of ISC edge weights within the significant component. Stability was assessed via leave-one-out analyses and bootstrap confidence intervals. Significant edges were mapped to Yeo 7 resting-state networks.ResultsAll three comparisons yielded a single significant component (HC versus AD: 340 edges; HC versus AGD: 80 edges; AGD versus AD: 39 edges). Component strength was higher in the group with less widespread morphological disruption (HC > AD; HC > AGD; AGD > AD), with non-overlapping bootstrap confidence intervals. Mapping to resting-state networks revealed widespread posterior cortico-limbic involvement in AD and a limbic-predominant pattern in AGD. In the AGD versus AD comparison, AD showed greater disruption within frontoparietal, somatomotor, and ventral attention systems. Component strength correlated positively with Mini-Mental State Examination scores (r = 0.48, p = 0.01).ConclusionsNBS applied to ISC matrices provides preliminary evidence of altered morphological similarity in AGD and AD, with AGD showing a limbic-predominant subnetwork and AD demonstrating broader posterior cortico-limbic involvement.
Additional Links: PMID-42663447
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42663447,
year = {2026},
author = {Sakurai, K and Kaneda, D and Uchida, Y and Shibata, H and Morimoto, S and Hashizume, Y},
title = {Network-based statistical mapping of structural covariance alterations in pathologically confirmed argyrophilic grain disease and Alzheimer's disease: An exploratory pilot study.},
journal = {Journal of Alzheimer's disease : JAD},
volume = {},
number = {},
pages = {13872877261480673},
doi = {10.1177/13872877261480673},
pmid = {42663447},
issn = {1875-8908},
abstract = {BackgroundAlthough neuroimaging differences from Alzheimer's disease (AD) in argyrophilic grain disease (AGD), a limbic-predominant 4-repeat tauopathy, have been evaluated, edge-wise alterations in structural similarity remain unexamined.ObjectiveAs an exploratory pilot study, to apply network-based statistics (NBS) to individualized structural covariance (ISC) matrices to identify morphological-similarity alterations in AGD and AD.MethodsWe analyzed 3D T1-weighted MRI from 13 pathologically confirmed AGD, 17 AD, and 18 healthy controls (HC). Gray-matter volumes from a 170-region atlas were used to compute ISC matrices. Between-group differences were assessed using NBS (threshold t = 3.5; 5000 permutations). Component strength was the sum of ISC edge weights within the significant component. Stability was assessed via leave-one-out analyses and bootstrap confidence intervals. Significant edges were mapped to Yeo 7 resting-state networks.ResultsAll three comparisons yielded a single significant component (HC versus AD: 340 edges; HC versus AGD: 80 edges; AGD versus AD: 39 edges). Component strength was higher in the group with less widespread morphological disruption (HC > AD; HC > AGD; AGD > AD), with non-overlapping bootstrap confidence intervals. Mapping to resting-state networks revealed widespread posterior cortico-limbic involvement in AD and a limbic-predominant pattern in AGD. In the AGD versus AD comparison, AD showed greater disruption within frontoparietal, somatomotor, and ventral attention systems. Component strength correlated positively with Mini-Mental State Examination scores (r = 0.48, p = 0.01).ConclusionsNBS applied to ISC matrices provides preliminary evidence of altered morphological similarity in AGD and AD, with AGD showing a limbic-predominant subnetwork and AD demonstrating broader posterior cortico-limbic involvement.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-26
Hospital-to-Home Neurological Transition Care: A Scoping Review Across Selected Chronic Neurological Disorders.
Medical sciences (Basel, Switzerland), 14(4):.
BACKGROUND: Returning home after neurological hospitalization, rehabilitation, or specialist care transfers responsibility to patients, caregivers, and community services. We mapped mechanisms and gaps across dementia/Alzheimer's disease and related dementias (ADRD), Parkinson's disease (PD), multiple sclerosis (MS), and amyotrophic lateral sclerosis (ALS).
METHODS: Following JBI guidance and PRISMA-ScR, eligibility was derived using population-concept-context. We included empirical reports involving adults with a target condition, a post-discharge, return-home, rehabilitation, telehealth, caregiver, treatment, respiratory, or palliative continuity component, and post-transition patient, caregiver, service, safety, rehabilitation, equity, or implementation outcomes. Five databases were searched through to 11 May 2026. Two reviewers independently screened records; charting and classification were verified by R.S.C., A.C., and A.Q.
RESULTS: Of 24,417 records, 69 reports were included: Dementia/ADRD, 28; PD, 10; MS, 9; and ALS, 22. Eighteen were core transition reports (26.1%), 14 return-home/community re-entry reports (20.3%), 16 adjacent continuity reports (23.2%), and 21 companion/secondary reports (30.4%). Dementia/ADRD provided discharge-anchored evidence; PD and MS mapped functional carry-over; ALS mapped adjacent respiratory, telehealth, and palliative continuity.
CONCLUSIONS: The main contribution is an operational cross-disease framework separating direct discharge, return-home, adjacent-continuity, and companion evidence while linking mechanisms to disease-specific pathways. This framework maps disease-specific functions, not comparative effectiveness. The proposed frameworks are author-derived and hypothesis-generating. Future studies should use explicit anchors, standardized outcomes, longer follow-up, and equity-sensitive implementation measures addressing caregiver workload, digital access, feasibility, and sustainability. They inform testable, context-sensitive intervention designs for future neurological transition-care research and practice.
Additional Links: PMID-42646579
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42646579,
year = {2026},
author = {Calabrò, RS and Calderone, A and Ravi, D and Galipò, C and Crupi, MF and Quartarone, A},
title = {Hospital-to-Home Neurological Transition Care: A Scoping Review Across Selected Chronic Neurological Disorders.},
journal = {Medical sciences (Basel, Switzerland)},
volume = {14},
number = {4},
pages = {},
pmid = {42646579},
issn = {2076-3271},
mesh = {Humans ; *Nervous System Diseases/therapy ; *Transitional Care ; Multiple Sclerosis ; Hospitalization ; Chronic Disease ; Amyotrophic Lateral Sclerosis ; },
abstract = {BACKGROUND: Returning home after neurological hospitalization, rehabilitation, or specialist care transfers responsibility to patients, caregivers, and community services. We mapped mechanisms and gaps across dementia/Alzheimer's disease and related dementias (ADRD), Parkinson's disease (PD), multiple sclerosis (MS), and amyotrophic lateral sclerosis (ALS).
METHODS: Following JBI guidance and PRISMA-ScR, eligibility was derived using population-concept-context. We included empirical reports involving adults with a target condition, a post-discharge, return-home, rehabilitation, telehealth, caregiver, treatment, respiratory, or palliative continuity component, and post-transition patient, caregiver, service, safety, rehabilitation, equity, or implementation outcomes. Five databases were searched through to 11 May 2026. Two reviewers independently screened records; charting and classification were verified by R.S.C., A.C., and A.Q.
RESULTS: Of 24,417 records, 69 reports were included: Dementia/ADRD, 28; PD, 10; MS, 9; and ALS, 22. Eighteen were core transition reports (26.1%), 14 return-home/community re-entry reports (20.3%), 16 adjacent continuity reports (23.2%), and 21 companion/secondary reports (30.4%). Dementia/ADRD provided discharge-anchored evidence; PD and MS mapped functional carry-over; ALS mapped adjacent respiratory, telehealth, and palliative continuity.
CONCLUSIONS: The main contribution is an operational cross-disease framework separating direct discharge, return-home, adjacent-continuity, and companion evidence while linking mechanisms to disease-specific pathways. This framework maps disease-specific functions, not comparative effectiveness. The proposed frameworks are author-derived and hypothesis-generating. Future studies should use explicit anchors, standardized outcomes, longer follow-up, and equity-sensitive implementation measures addressing caregiver workload, digital access, feasibility, and sustainability. They inform testable, context-sensitive intervention designs for future neurological transition-care research and practice.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
*Nervous System Diseases/therapy
*Transitional Care
Multiple Sclerosis
Hospitalization
Chronic Disease
Amyotrophic Lateral Sclerosis
RevDate: 2026-08-27
CmpDate: 2026-08-26
The Visual System in Alzheimer's Disease: A Multilevel Review of Pathology, Monitoring, and Intervention.
Vision (Basel, Switzerland), 10(3):.
Alzheimer's disease (AD) extends beyond the brain to the visual system, offering a promising window for pathology, monitoring, and intervention. This review synthesizes evidence on AD-related visual impairments across molecular, cellular, circuit, and cortical levels. We examine the eye-brain pathological relationship as a working framework, noting experimental evidence for brain-to-eye amyloid-β (Aβ) transport in mouse models and associations between retinal and cerebral pathology in humans, while emphasizing that bidirectional pathological transport has not been established. Structural and functional changes in the retina, optic nerve, and visual cortex are reviewed, alongside white matter damage and posterior cortical atrophy patterns. We evaluate emerging multimodal tools (OCTA, ERG, and hyperspectral imaging) that shift diagnosis toward an integrated "structure-vessel-function" assessment. We critically examine non-pharmacological interventions, including 40 Hz gamma stimulation and photobiomodulation, discussing their mechanisms, translational challenges, and the dissociation between structural and cognitive outcomes. We propose the visual system as a candidate pathological window, a quantitative monitoring platform, and an investigational intervention entry point in Alzheimer's disease. However, clinical translation of these applications requires standardized acquisition protocols, prospective longitudinal validation, and robust mechanistic evidence. To advance this agenda, we identify three priorities: multimodal data integration, closed-loop neuromodulation strategies, and methodologically rigorous validation frameworks.
Additional Links: PMID-42646820
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42646820,
year = {2026},
author = {Liu, Y and Lu, J and Zhang, Z and Yao, D and Xia, Y and Chen, K},
title = {The Visual System in Alzheimer's Disease: A Multilevel Review of Pathology, Monitoring, and Intervention.},
journal = {Vision (Basel, Switzerland)},
volume = {10},
number = {3},
pages = {},
pmid = {42646820},
issn = {2411-5150},
support = {2022ZD0208500//National Science and Technology Major Project/ ; 2024YFHZ0359//Sichuan Science and Technology Program/ ; },
abstract = {Alzheimer's disease (AD) extends beyond the brain to the visual system, offering a promising window for pathology, monitoring, and intervention. This review synthesizes evidence on AD-related visual impairments across molecular, cellular, circuit, and cortical levels. We examine the eye-brain pathological relationship as a working framework, noting experimental evidence for brain-to-eye amyloid-β (Aβ) transport in mouse models and associations between retinal and cerebral pathology in humans, while emphasizing that bidirectional pathological transport has not been established. Structural and functional changes in the retina, optic nerve, and visual cortex are reviewed, alongside white matter damage and posterior cortical atrophy patterns. We evaluate emerging multimodal tools (OCTA, ERG, and hyperspectral imaging) that shift diagnosis toward an integrated "structure-vessel-function" assessment. We critically examine non-pharmacological interventions, including 40 Hz gamma stimulation and photobiomodulation, discussing their mechanisms, translational challenges, and the dissociation between structural and cognitive outcomes. We propose the visual system as a candidate pathological window, a quantitative monitoring platform, and an investigational intervention entry point in Alzheimer's disease. However, clinical translation of these applications requires standardized acquisition protocols, prospective longitudinal validation, and robust mechanistic evidence. To advance this agenda, we identify three priorities: multimodal data integration, closed-loop neuromodulation strategies, and methodologically rigorous validation frameworks.},
}
RevDate: 2026-08-26
CmpDate: 2026-08-26
Domain-Specific Cognitive Concordance in Older Married Couples.
JAMA network open, 9(8):e2631017.
IMPORTANCE: Spousal similarity in late-life cognition has been reported, but whether concordance differs across cognitive domains remains unclear.
OBJECTIVE: To examine whether cognitive concordance among older married couples is domain specific by comparing real couples with demographically and genetically matched control pairs.
This nationwide, multicenter, community-based cross-sectional study was conducted from January 2019 to December 2020 and included married couples from the Korean Longitudinal Study of Cognitive Aging and Dementia. Each spouse was individually matched to an unrelated control based on sex, cognitive diagnosis, apolipoprotein E ε4 status, age, and education. Data were analyzed from March to April 2026.
EXPOSURE: Marital pairing within a 4-group matched design (real couples, spouse-control pairs, and matched null couples).
MAIN OUTCOMES AND MEASURES: For 9 subtests from the Korean version of the Consortium to Establish a Registry for Alzheimer Disease Assessment Packet, intraclass correlation coefficients (ICCs) were calculated within each group, and the spousal concordance (ICC difference) was defined as the difference between the ICC of real couples and that of matched null couples. Significance was assessed with 2-sided permutation tests and Benjamini-Hochberg false discovery rate correction.
RESULTS: The sample included 783 married couples (1566 individuals; 783 [50.0%] female and 783 [50.0%] male; mean [SD] age, 74.0 [5.5] years) and 783 matched control couples. Among the 783 married couples, 4 of 9 subtests showed significant ICC differences after false discovery rate correction in unadjusted analyses: Verbal Fluency (ICC difference, 0.232; 95% CI, 0.138-0.324), Constructional Praxis (ICC difference, 0.145; 95% CI, 0.039-0.252), Boston Naming Test (ICC difference, 0.134; 95% CI, 0.038-0.231), and Constructional Recall (ICC difference, 0.110; 95% CI, 0.017-0.200); all remained significant after covariate adjustment. In contrast, the Mini-Mental State Examination and verbal memory recall and recognition showed little concordance beyond demographically matched null pairs.
CONCLUSIONS AND RELEVANCE: In this cross-sectional study of 783 older married couples, spousal cognitive concordance was domain specific, with the greatest effect size estimates in language and visuospatial function rather than global cognition. These findings suggest that spousal cognitive similarity may be missed when analyses rely only on global screening measures, highlighting the need for longitudinal study of within-couple concordance.
Additional Links: PMID-42646836
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42646836,
year = {2026},
author = {Yang, HW and Han, JW and Oh, DJ and Kim, BJ and Lee, DW and Kim, JL and Jhoo, JH and Park, JH and Lee, JJ and Kwak, KP and Lee, SB and Moon, SW and Ryu, SH and Kim, SG and Kim, KW},
title = {Domain-Specific Cognitive Concordance in Older Married Couples.},
journal = {JAMA network open},
volume = {9},
number = {8},
pages = {e2631017},
pmid = {42646836},
issn = {2574-3805},
mesh = {Humans ; Female ; Male ; Cross-Sectional Studies ; Republic of Korea ; Aged ; *Spouses/psychology/statistics & numerical data ; *Cognition/physiology ; Longitudinal Studies ; Aged, 80 and over ; Neuropsychological Tests ; *Marriage/psychology ; },
abstract = {IMPORTANCE: Spousal similarity in late-life cognition has been reported, but whether concordance differs across cognitive domains remains unclear.
OBJECTIVE: To examine whether cognitive concordance among older married couples is domain specific by comparing real couples with demographically and genetically matched control pairs.
This nationwide, multicenter, community-based cross-sectional study was conducted from January 2019 to December 2020 and included married couples from the Korean Longitudinal Study of Cognitive Aging and Dementia. Each spouse was individually matched to an unrelated control based on sex, cognitive diagnosis, apolipoprotein E ε4 status, age, and education. Data were analyzed from March to April 2026.
EXPOSURE: Marital pairing within a 4-group matched design (real couples, spouse-control pairs, and matched null couples).
MAIN OUTCOMES AND MEASURES: For 9 subtests from the Korean version of the Consortium to Establish a Registry for Alzheimer Disease Assessment Packet, intraclass correlation coefficients (ICCs) were calculated within each group, and the spousal concordance (ICC difference) was defined as the difference between the ICC of real couples and that of matched null couples. Significance was assessed with 2-sided permutation tests and Benjamini-Hochberg false discovery rate correction.
RESULTS: The sample included 783 married couples (1566 individuals; 783 [50.0%] female and 783 [50.0%] male; mean [SD] age, 74.0 [5.5] years) and 783 matched control couples. Among the 783 married couples, 4 of 9 subtests showed significant ICC differences after false discovery rate correction in unadjusted analyses: Verbal Fluency (ICC difference, 0.232; 95% CI, 0.138-0.324), Constructional Praxis (ICC difference, 0.145; 95% CI, 0.039-0.252), Boston Naming Test (ICC difference, 0.134; 95% CI, 0.038-0.231), and Constructional Recall (ICC difference, 0.110; 95% CI, 0.017-0.200); all remained significant after covariate adjustment. In contrast, the Mini-Mental State Examination and verbal memory recall and recognition showed little concordance beyond demographically matched null pairs.
CONCLUSIONS AND RELEVANCE: In this cross-sectional study of 783 older married couples, spousal cognitive concordance was domain specific, with the greatest effect size estimates in language and visuospatial function rather than global cognition. These findings suggest that spousal cognitive similarity may be missed when analyses rely only on global screening measures, highlighting the need for longitudinal study of within-couple concordance.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
Female
Male
Cross-Sectional Studies
Republic of Korea
Aged
*Spouses/psychology/statistics & numerical data
*Cognition/physiology
Longitudinal Studies
Aged, 80 and over
Neuropsychological Tests
*Marriage/psychology
RevDate: 2026-08-27
CmpDate: 2026-08-26
Environmental Cadmium Exposure Exacerbates Alzheimer's-like Pathology in a Gut Microbiota-Involved Manner.
Toxics, 14(8):.
Cadmium (Cd), a ubiquitous environmental toxicant, poses substantial health risks even at low-dose chronic exposures. In this study, we developed a mouse model with chronic low-dose dietary Cd exposure (100 nM CdCl2 in drinking water for eight months) to investigate its impacts on cognitive and neuropathological alterations. Behavioral assessments demonstrated that Cd-exposed mice exhibited pronounced deficits in spatial learning, memory retention, and working memory compared with control mice. Histopathological analyses of hippocampus uncovered accelerated Alzheimer's-like neuropathology, marked by elevated β-amyloid plaque immunoreactivity and tau hyperphosphorylation. Concurrently, neuroinflammatory responses were markedly upregulated, shown as astrocytes activation and pro-inflammatory Th17 cell signatures in parenchyma. Brain transcriptomic profiling revealed extracerebral prostaglandin signaling following Cd exposure, a finding consistent with elevated prostaglandins detected in the gut. Crucially, these outcomes were gut microbiota-involved: antibiotic-mediated microbiota depletion attenuated dietary Cd-enhanced cognitive impairments, neuroinflammation, and prostaglandin upregulation, underscoring the critical role of intestinal microbes in mediating Cd neurotoxicity. Furthermore, in vitro co-culture experiments demonstrated that Cd potentiated prostaglandin production in intestinal epithelial cells-an effect amplified by gut bacterial stimuli. This observation suggests a mechanism under which peripheral prostaglandins may contribute to central inflammatory cascades. Together, these findings support a gut-brain mechanism underlying dietary Cd-exacerbated neurodegeneration and highlight gut homeostasis and prostaglandin signaling as promising therapeutic targets for mitigating Cd-associated neurodegenerative disorders.
Additional Links: PMID-42646944
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42646944,
year = {2026},
author = {Guo, B and Chang, J and Liu, A and Li, M and Guo, L and Cheng, S and Wang, H and Ba, Q},
title = {Environmental Cadmium Exposure Exacerbates Alzheimer's-like Pathology in a Gut Microbiota-Involved Manner.},
journal = {Toxics},
volume = {14},
number = {8},
pages = {},
pmid = {42646944},
issn = {2305-6304},
support = {2022YFF0606703//National Key R&D Program of China/ ; KF202330//the Open Foundation of Shaanxi University of Chinese Medi-cine Key Laboratory of Research & Development of Characteristic Qin Medicine Re-sources/ ; },
abstract = {Cadmium (Cd), a ubiquitous environmental toxicant, poses substantial health risks even at low-dose chronic exposures. In this study, we developed a mouse model with chronic low-dose dietary Cd exposure (100 nM CdCl2 in drinking water for eight months) to investigate its impacts on cognitive and neuropathological alterations. Behavioral assessments demonstrated that Cd-exposed mice exhibited pronounced deficits in spatial learning, memory retention, and working memory compared with control mice. Histopathological analyses of hippocampus uncovered accelerated Alzheimer's-like neuropathology, marked by elevated β-amyloid plaque immunoreactivity and tau hyperphosphorylation. Concurrently, neuroinflammatory responses were markedly upregulated, shown as astrocytes activation and pro-inflammatory Th17 cell signatures in parenchyma. Brain transcriptomic profiling revealed extracerebral prostaglandin signaling following Cd exposure, a finding consistent with elevated prostaglandins detected in the gut. Crucially, these outcomes were gut microbiota-involved: antibiotic-mediated microbiota depletion attenuated dietary Cd-enhanced cognitive impairments, neuroinflammation, and prostaglandin upregulation, underscoring the critical role of intestinal microbes in mediating Cd neurotoxicity. Furthermore, in vitro co-culture experiments demonstrated that Cd potentiated prostaglandin production in intestinal epithelial cells-an effect amplified by gut bacterial stimuli. This observation suggests a mechanism under which peripheral prostaglandins may contribute to central inflammatory cascades. Together, these findings support a gut-brain mechanism underlying dietary Cd-exacerbated neurodegeneration and highlight gut homeostasis and prostaglandin signaling as promising therapeutic targets for mitigating Cd-associated neurodegenerative disorders.},
}
RevDate: 2026-08-26
Long-Term Dietary Supplementation with Pearl Oyster Shell-Derived Nacre Extract Improves Cognitive Performance and Attenuates Alzheimer's Disease-Like Pathology in APPNL-G-F/NL-G-F Knock-In Mice.
Journal of dietary supplements [Epub ahead of print].
Alzheimer's disease is characterized by cognitive decline, amyloid-β deposition, tau-related pathology, neuroinflammation, and oxidative stress. Pearl oyster shell-derived nacre extract is used in dietary supplement-related applications, but evidence from animal models should be interpreted cautiously and its effects on Alzheimer's disease-like pathology remain incompletely defined. To evaluate whether long-term oral dietary supplementation with nacre extract is associated with changes in cognitive performance and Alzheimer's disease-like pathological features in APPNL-G-F/NL-G-F knock-in mice. A controlled preclinical animal study was performed using male C57BL/6 wild-type mice and male APP[NL-G-F/NL-G-F] knock-in mice over a 6-month dietary supplementation period. Six mice were assigned to each group. APP knock-in mice received a standard diet with or without 0.5% (w/w) nacre extract, corresponding to an estimated intake of approximately 20 mg/mouse/day or approximately 600 mg/kg/day. Cognitive performance was assessed using the Y-maze and novel object recognition tests. Brain pathology and molecular responses were evaluated by histology, immunohistochemistry, RNA sequencing, qPCR, Western blotting, and oxidative stress-related assays. Nacre supplementation was associated with improved performance in the Y-maze and novel object recognition tests, reduced amyloid-β deposition and Congo red-positive plaque burden, lower phosphorylated tau immunoreactivity, and fewer histologically degenerated hippocampal neurons. Exploratory RNA sequencing of non-microdissected brain tissue excluding the cerebellum (n = 3/group) identified 53 genes meeting the criteria of an absolute fold change ≥ 1.5 and a valid non-zero FDR-adjusted p value < 0.05. A2M showed a 1.51-fold increase (FDR-adjusted p = 0.00091), and increased A2M abundance was confirmed at the protein level. Iba1 and GFAP immunoreactivity was reduced, and oxidative stress-related parameters were altered in the nacre-supplemented group. Long-term nacre supplementation was associated with improvements in behavioral performance and attenuation of several Alzheimer's disease-like pathological features in male APP knock-in mice. These findings represent an exploratory preclinical signal and do not establish a causal mechanism, dose-response relationship, comprehensive safety profile, or efficacy as a dietary supplement in humans.
Additional Links: PMID-42647155
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42647155,
year = {2026},
author = {Ohara, K and Zhang, H and Shibata, H and Hasegawa, Y},
title = {Long-Term Dietary Supplementation with Pearl Oyster Shell-Derived Nacre Extract Improves Cognitive Performance and Attenuates Alzheimer's Disease-Like Pathology in APPNL-G-F/NL-G-F Knock-In Mice.},
journal = {Journal of dietary supplements},
volume = {},
number = {},
pages = {1-20},
doi = {10.1080/19390211.2026.2718077},
pmid = {42647155},
issn = {1939-022X},
abstract = {Alzheimer's disease is characterized by cognitive decline, amyloid-β deposition, tau-related pathology, neuroinflammation, and oxidative stress. Pearl oyster shell-derived nacre extract is used in dietary supplement-related applications, but evidence from animal models should be interpreted cautiously and its effects on Alzheimer's disease-like pathology remain incompletely defined. To evaluate whether long-term oral dietary supplementation with nacre extract is associated with changes in cognitive performance and Alzheimer's disease-like pathological features in APPNL-G-F/NL-G-F knock-in mice. A controlled preclinical animal study was performed using male C57BL/6 wild-type mice and male APP[NL-G-F/NL-G-F] knock-in mice over a 6-month dietary supplementation period. Six mice were assigned to each group. APP knock-in mice received a standard diet with or without 0.5% (w/w) nacre extract, corresponding to an estimated intake of approximately 20 mg/mouse/day or approximately 600 mg/kg/day. Cognitive performance was assessed using the Y-maze and novel object recognition tests. Brain pathology and molecular responses were evaluated by histology, immunohistochemistry, RNA sequencing, qPCR, Western blotting, and oxidative stress-related assays. Nacre supplementation was associated with improved performance in the Y-maze and novel object recognition tests, reduced amyloid-β deposition and Congo red-positive plaque burden, lower phosphorylated tau immunoreactivity, and fewer histologically degenerated hippocampal neurons. Exploratory RNA sequencing of non-microdissected brain tissue excluding the cerebellum (n = 3/group) identified 53 genes meeting the criteria of an absolute fold change ≥ 1.5 and a valid non-zero FDR-adjusted p value < 0.05. A2M showed a 1.51-fold increase (FDR-adjusted p = 0.00091), and increased A2M abundance was confirmed at the protein level. Iba1 and GFAP immunoreactivity was reduced, and oxidative stress-related parameters were altered in the nacre-supplemented group. Long-term nacre supplementation was associated with improvements in behavioral performance and attenuation of several Alzheimer's disease-like pathological features in male APP knock-in mice. These findings represent an exploratory preclinical signal and do not establish a causal mechanism, dose-response relationship, comprehensive safety profile, or efficacy as a dietary supplement in humans.},
}
RevDate: 2026-08-26
CmpDate: 2026-08-26
Xanthones and Their Nitrogen and Sulfur Analogs in Alzheimer's Disease: Recent Progress Toward Multifunctional Therapeutics.
ChemMedChem, 21(16):e70453.
Alzheimer's disease (AD) is a multifactorial neurodegenerative disorder and the leading cause of dementia among the elderly worldwide. In medicinal chemistry and drug discovery, heterocycles are widely recognized as privileged scaffolds due to their structural versatility and biological relevance. In the context of AD, heterocyclic compounds have been extensively investigated for the development of potential therapeutic agents. Among fused heterocyclic systems, oxygen-, nitrogen-, and sulfur-containing heterocycles are particularly prominent in approved drugs. This review focuses on recent advances in the exploration of xanthone derivatives, alongside with their nitrogen- and sulfur-containing analogs, as promising template scaffolds for the development of prospective anti-AD therapeutics.
Additional Links: PMID-42647218
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42647218,
year = {2026},
author = {Malafaia, D and Melo, L and Silva, AMS and Albuquerque, HMT},
title = {Xanthones and Their Nitrogen and Sulfur Analogs in Alzheimer's Disease: Recent Progress Toward Multifunctional Therapeutics.},
journal = {ChemMedChem},
volume = {21},
number = {16},
pages = {e70453},
pmid = {42647218},
issn = {1860-7187},
mesh = {Humans ; *Alzheimer Disease/drug therapy/metabolism ; *Xanthones/chemistry/therapeutic use/pharmacology ; *Sulfur/chemistry ; *Nitrogen/chemistry ; Molecular Structure ; *Neuroprotective Agents/chemistry/pharmacology/therapeutic use ; Animals ; },
abstract = {Alzheimer's disease (AD) is a multifactorial neurodegenerative disorder and the leading cause of dementia among the elderly worldwide. In medicinal chemistry and drug discovery, heterocycles are widely recognized as privileged scaffolds due to their structural versatility and biological relevance. In the context of AD, heterocyclic compounds have been extensively investigated for the development of potential therapeutic agents. Among fused heterocyclic systems, oxygen-, nitrogen-, and sulfur-containing heterocycles are particularly prominent in approved drugs. This review focuses on recent advances in the exploration of xanthone derivatives, alongside with their nitrogen- and sulfur-containing analogs, as promising template scaffolds for the development of prospective anti-AD therapeutics.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
*Alzheimer Disease/drug therapy/metabolism
*Xanthones/chemistry/therapeutic use/pharmacology
*Sulfur/chemistry
*Nitrogen/chemistry
Molecular Structure
*Neuroprotective Agents/chemistry/pharmacology/therapeutic use
Animals
RevDate: 2026-08-26
CmpDate: 2026-08-26
Beyond the Central Nervous System: Uncovering Memantine's Modulatory Role in the Peripheral Nervous System.
Medicines (Basel, Switzerland), 13(3):.
Background: Memantine, an uncompetitive and voltage-dependent N-methyl-D-aspartate (NMDA) receptor antagonist, is clinically established for moderate-to-severe Alzheimer's disease. Its pharmacodynamic profile, low-to-moderate affinity, rapid open-channel block, and strong voltage dependency allows selective inhibition of pathological NMDA overactivation while preserving physiological neurotransmission. Increasing evidence shows that these same mechanistic principles operate in the peripheral nervous system, where NMDA receptors contribute to excitotoxicity, oxidative stress, neuroinflammation, and maladaptive nociceptive signaling. Purpose: To synthesize emerging preclinical and clinical evidence demonstrating memantine's modulatory and neuroprotective actions in peripheral neurons and glia and to outline implications for drug repurposing across neurology, pain medicine, oncology, supportive care, and ophthalmology. Methodology: A narrative integration of mechanistic studies, in vivo preclinical models, and heterogeneous clinical trials evaluating memantine's effects on peripheral sensory neurons, autonomic neurons, Schwann cells, retinal ganglion cells, and neuromuscular junction physiology. Evidence was examined across conditions involving excitotoxicity, oxidative injury, mitochondrial dysfunction, apoptotic signaling, neuroinflammation, and neuropathic pain amplification. Results: Memantine consistently attenuates peripheral excitotoxic calcium influx, suppresses NOX-2-mediated ROS generation, stabilizes mitochondrial membrane potential, modulates Bax/Bcl-2 signaling, and reduces neuroinflammatory cytokine activity. It also inhibits dorsal horn wind-up selectively under neuropathic conditions. These convergent mechanisms yield protective effects across chemotherapy-induced peripheral neuropathy (CIPN), diabetic neuropathy, traumatic nerve injury, phantom limb pain, retinal ganglion cell excitotoxicity, and organophosphate-induced neuromuscular toxicity. Clinical evidence includes improved multimodal neuropathy outcomes in diabetic neuropathy when combined with gabapentin, reduced phantom limb pain prevalence and intensity at six months, and a five-fold reduction in post-mastectomy neuropathic pain with pre-emptive administration. Conclusions: Memantine should be conceptually reframed as a system-wide neuroprotective agent with substantial translational potential beyond the CNS. Priorities for future development include NR2B-selective peripheral NMDA antagonists, peripherally restricted formulations, single-cell transcriptomic mapping of peripheral NMDA receptor subtypes, and adequately powered PNS-specific randomized trials.
Additional Links: PMID-42647276
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42647276,
year = {2026},
author = {Papadopoulou, K and Tsokkou, S and Konstantinidis, I and Pavlidis, P and Sardeli, C and Kouvelas, D and Meditskou-Efthymiadou, S and Sioga, A and Papamitsou, T},
title = {Beyond the Central Nervous System: Uncovering Memantine's Modulatory Role in the Peripheral Nervous System.},
journal = {Medicines (Basel, Switzerland)},
volume = {13},
number = {3},
pages = {},
pmid = {42647276},
issn = {2305-6320},
abstract = {Background: Memantine, an uncompetitive and voltage-dependent N-methyl-D-aspartate (NMDA) receptor antagonist, is clinically established for moderate-to-severe Alzheimer's disease. Its pharmacodynamic profile, low-to-moderate affinity, rapid open-channel block, and strong voltage dependency allows selective inhibition of pathological NMDA overactivation while preserving physiological neurotransmission. Increasing evidence shows that these same mechanistic principles operate in the peripheral nervous system, where NMDA receptors contribute to excitotoxicity, oxidative stress, neuroinflammation, and maladaptive nociceptive signaling. Purpose: To synthesize emerging preclinical and clinical evidence demonstrating memantine's modulatory and neuroprotective actions in peripheral neurons and glia and to outline implications for drug repurposing across neurology, pain medicine, oncology, supportive care, and ophthalmology. Methodology: A narrative integration of mechanistic studies, in vivo preclinical models, and heterogeneous clinical trials evaluating memantine's effects on peripheral sensory neurons, autonomic neurons, Schwann cells, retinal ganglion cells, and neuromuscular junction physiology. Evidence was examined across conditions involving excitotoxicity, oxidative injury, mitochondrial dysfunction, apoptotic signaling, neuroinflammation, and neuropathic pain amplification. Results: Memantine consistently attenuates peripheral excitotoxic calcium influx, suppresses NOX-2-mediated ROS generation, stabilizes mitochondrial membrane potential, modulates Bax/Bcl-2 signaling, and reduces neuroinflammatory cytokine activity. It also inhibits dorsal horn wind-up selectively under neuropathic conditions. These convergent mechanisms yield protective effects across chemotherapy-induced peripheral neuropathy (CIPN), diabetic neuropathy, traumatic nerve injury, phantom limb pain, retinal ganglion cell excitotoxicity, and organophosphate-induced neuromuscular toxicity. Clinical evidence includes improved multimodal neuropathy outcomes in diabetic neuropathy when combined with gabapentin, reduced phantom limb pain prevalence and intensity at six months, and a five-fold reduction in post-mastectomy neuropathic pain with pre-emptive administration. Conclusions: Memantine should be conceptually reframed as a system-wide neuroprotective agent with substantial translational potential beyond the CNS. Priorities for future development include NR2B-selective peripheral NMDA antagonists, peripherally restricted formulations, single-cell transcriptomic mapping of peripheral NMDA receptor subtypes, and adequately powered PNS-specific randomized trials.},
}
RevDate: 2026-08-26
CmpDate: 2026-08-26
Physical Exercise and Gut Microbiota: Implications for Alzheimer's Disease in Experimental Models: A Systematic Review and Meta-Analysis.
Journal of functional morphology and kinesiology, 11(3):.
Background and Objectives: The concept of the gut-muscle-brain axis encompasses the intricate, multidirectional interactions between the gut microbiota (GM), physical exercise (PE), and the central nervous system. Within this framework, gut dysbiosis has been implicated in the pathogenesis of Alzheimer's disease (AD). Given that cognitive functions in AD appear to benefit from PE, it is plausible to hypothesize that these improvements may be partially mediated by PE-induced alterations in GM taxonomy. Therefore, the objective of this study is to evaluate the potential effects of PE in the GM and their implications for AD. Methods: A systematic review was conducted in PubMed, Web of Science and Scopus following the PRISMA guidelines up to July 2025 for preclinical controlled trials that assessed the effects of PE on the GM of AD animal models. A random-effects model meta-analysis was performed to estimate the pooled effect of PE on GM frequency or composition. This study received no external funding. Results: Eight studies were included in the systematic review (sample size, n = 126), of which two could be meta-analyzed. We found that PE significantly reduced Actinobacteria abundance (MD = -0.005%; 95% CI, -0.008 to -0.002; p = 0.001) with no statistically significant evidence of heterogeneity (I[2] = 89.60%, Q = 0.102, p = 0.950) or publication bias observed (Begg's test, p = 0.296), but no significant effects were found for other phylums or genera. Conclusions: PE appears capable of modulating the GM of animal models with AD in a selective and heterogeneous manner. Further studies are needed to clarify the mechanisms by which this is possible and to determinate its impact on the pathogenesis of the disease.
Additional Links: PMID-42647328
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42647328,
year = {2026},
author = {Merino-País, M and López-Ortiz, S and Emanuele, E and Imbimbo, C and Imbimbo, BP and Lista, S and Santos-Lozano, A},
title = {Physical Exercise and Gut Microbiota: Implications for Alzheimer's Disease in Experimental Models: A Systematic Review and Meta-Analysis.},
journal = {Journal of functional morphology and kinesiology},
volume = {11},
number = {3},
pages = {},
pmid = {42647328},
issn = {2411-5142},
abstract = {Background and Objectives: The concept of the gut-muscle-brain axis encompasses the intricate, multidirectional interactions between the gut microbiota (GM), physical exercise (PE), and the central nervous system. Within this framework, gut dysbiosis has been implicated in the pathogenesis of Alzheimer's disease (AD). Given that cognitive functions in AD appear to benefit from PE, it is plausible to hypothesize that these improvements may be partially mediated by PE-induced alterations in GM taxonomy. Therefore, the objective of this study is to evaluate the potential effects of PE in the GM and their implications for AD. Methods: A systematic review was conducted in PubMed, Web of Science and Scopus following the PRISMA guidelines up to July 2025 for preclinical controlled trials that assessed the effects of PE on the GM of AD animal models. A random-effects model meta-analysis was performed to estimate the pooled effect of PE on GM frequency or composition. This study received no external funding. Results: Eight studies were included in the systematic review (sample size, n = 126), of which two could be meta-analyzed. We found that PE significantly reduced Actinobacteria abundance (MD = -0.005%; 95% CI, -0.008 to -0.002; p = 0.001) with no statistically significant evidence of heterogeneity (I[2] = 89.60%, Q = 0.102, p = 0.950) or publication bias observed (Begg's test, p = 0.296), but no significant effects were found for other phylums or genera. Conclusions: PE appears capable of modulating the GM of animal models with AD in a selective and heterogeneous manner. Further studies are needed to clarify the mechanisms by which this is possible and to determinate its impact on the pathogenesis of the disease.},
}
RevDate: 2026-08-26
Expression of Concern: Constipation in Tg2576 mice model for Alzheimer's disease associated with dysregulation of mechanism involving the mAChR signaling pathway and ER stress response.
PloS one, 21(8):e0356955.
Additional Links: PMID-42647485
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42647485,
year = {2026},
author = {, },
title = {Expression of Concern: Constipation in Tg2576 mice model for Alzheimer's disease associated with dysregulation of mechanism involving the mAChR signaling pathway and ER stress response.},
journal = {PloS one},
volume = {21},
number = {8},
pages = {e0356955},
pmid = {42647485},
issn = {1932-6203},
}
RevDate: 2026-08-26
CmpDate: 2026-08-26
EOAD-Signature Atrophy Predicts Dementia in Early-Onset MCI due to Alzheimer Disease: An MRI-Based Prognostic Biomarker.
Neurology, 107(7):e218519.
BACKGROUND AND OBJECTIVES: Early-onset Alzheimer disease (EOAD) is associated with substantial variability in clinical progression, and reliable biomarkers to predict the transition from mild cognitive impairment (MCI) to dementia remain limited. Structural MRI measures have demonstrated prognostic value in late-onset Alzheimer disease, but their utility for predicting progression in EOAD is less well understood. The goal was to examine whether baseline cortical atrophy predicts progression to dementia in patients with MCI because of EOAD.
METHODS: This study included a well-characterized cohort of patients with EOAD enrolled in the large multisite natural history Longitudinal Early-Onset Alzheimer's Disease Study. Participants underwent standardized clinical assessments and structural MRI at baseline. Participants were aged between 40 and 64 years with biomarker-supported sporadic EOAD at the MCI stage. Cortical atrophy was measured within the EOAD-signature, a set of predominantly parieto-temporal regions showing greater atrophy in EOAD than in controls. Clinical severity was measured with the global Clinical Dementia Rating. Cox proportional hazards models estimated the association between baseline EOAD-signature atrophy burden and the hazard of progression to dementia over time. We evaluated whether EOAD-signature atrophy improved prognostic performance beyond baseline clinical severity using likelihood ratio tests, Akaike Information Criterion (AIC), and Harrell concordance index.
RESULTS: A total of 130 patients with MCI due to EOAD (mean age 59.6 ± 4.1 years; 49% female) and 97 cognitively normal controls (mean age 56.9 ± 6.0 years; 64% female) were included. Greater baseline atrophy within the EOAD-signature predicted faster progression to dementia (hazard ratio [HR] = 1.24 per 1-SD increase in atrophy; 95% CI 1.13-1.37; p < 0.002). Adding EOAD-signature atrophy burden to a model including baseline clinical severity significantly improved model fit (ΔAIC = -4.5; likelihood ratio test p = 0.011).
DISCUSSION: Baseline cortical atrophy within the EOAD-signature predicts progression from MCI to dementia in EOAD and provides prognostic information beyond baseline clinical severity. These findings support the potential value of EOAD-signature atrophy as an MRI-based biomarker for individualized prognostication and clinical trial stratification.
Additional Links: PMID-42647766
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42647766,
year = {2026},
author = {Paranhos, T and Katsumi, Y and Brickhouse, MJ and Eloyan, A and Eckbo, R and Zaitsev, A and Du, A and La Joie, R and Thangarajah, M and Taurone, A and Vemuri, P and Jack, CR and , and Hammers, DB and Aisen, PS and Beckett, LA and Koeppe, R and Kukull, WA and Toga, AW and Atri, A and Clark, DG and Day, GS and Duara, R and Graff-Radford, NR and Grant, IM and Honig, LS and Johnson, E and Jones, DT and Masdeu, JC and Mendez, MF and Musiek, ES and Onyike, CU and Riddle, M and Rogalski, E and Salloway, S and Sha, SJ and Turner, RS and Wingo, T and Wolk, DA and Womack, KB and Carrillo, MC and Rabinovici, GD and Apostolova, LG and Dickerson, BC and Eldaief, MC and Touroutoglou, A},
title = {EOAD-Signature Atrophy Predicts Dementia in Early-Onset MCI due to Alzheimer Disease: An MRI-Based Prognostic Biomarker.},
journal = {Neurology},
volume = {107},
number = {7},
pages = {e218519},
doi = {10.1212/WNL.0000000000218519},
pmid = {42647766},
issn = {1526-632X},
mesh = {Humans ; Female ; Atrophy/pathology ; *Alzheimer Disease/diagnostic imaging/pathology/complications ; Magnetic Resonance Imaging ; Disease Progression ; *Cognitive Dysfunction/diagnostic imaging/pathology/etiology ; Prognosis ; Male ; Middle Aged ; Biomarkers ; Adult ; Longitudinal Studies ; *Dementia/diagnostic imaging ; },
abstract = {BACKGROUND AND OBJECTIVES: Early-onset Alzheimer disease (EOAD) is associated with substantial variability in clinical progression, and reliable biomarkers to predict the transition from mild cognitive impairment (MCI) to dementia remain limited. Structural MRI measures have demonstrated prognostic value in late-onset Alzheimer disease, but their utility for predicting progression in EOAD is less well understood. The goal was to examine whether baseline cortical atrophy predicts progression to dementia in patients with MCI because of EOAD.
METHODS: This study included a well-characterized cohort of patients with EOAD enrolled in the large multisite natural history Longitudinal Early-Onset Alzheimer's Disease Study. Participants underwent standardized clinical assessments and structural MRI at baseline. Participants were aged between 40 and 64 years with biomarker-supported sporadic EOAD at the MCI stage. Cortical atrophy was measured within the EOAD-signature, a set of predominantly parieto-temporal regions showing greater atrophy in EOAD than in controls. Clinical severity was measured with the global Clinical Dementia Rating. Cox proportional hazards models estimated the association between baseline EOAD-signature atrophy burden and the hazard of progression to dementia over time. We evaluated whether EOAD-signature atrophy improved prognostic performance beyond baseline clinical severity using likelihood ratio tests, Akaike Information Criterion (AIC), and Harrell concordance index.
RESULTS: A total of 130 patients with MCI due to EOAD (mean age 59.6 ± 4.1 years; 49% female) and 97 cognitively normal controls (mean age 56.9 ± 6.0 years; 64% female) were included. Greater baseline atrophy within the EOAD-signature predicted faster progression to dementia (hazard ratio [HR] = 1.24 per 1-SD increase in atrophy; 95% CI 1.13-1.37; p < 0.002). Adding EOAD-signature atrophy burden to a model including baseline clinical severity significantly improved model fit (ΔAIC = -4.5; likelihood ratio test p = 0.011).
DISCUSSION: Baseline cortical atrophy within the EOAD-signature predicts progression from MCI to dementia in EOAD and provides prognostic information beyond baseline clinical severity. These findings support the potential value of EOAD-signature atrophy as an MRI-based biomarker for individualized prognostication and clinical trial stratification.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
Female
Atrophy/pathology
*Alzheimer Disease/diagnostic imaging/pathology/complications
Magnetic Resonance Imaging
Disease Progression
*Cognitive Dysfunction/diagnostic imaging/pathology/etiology
Prognosis
Male
Middle Aged
Biomarkers
Adult
Longitudinal Studies
*Dementia/diagnostic imaging
RevDate: 2026-08-26
Domain-specific deficits in categorical perception unveil the neural architecture of auditory agnosia in dementia.
Hearing research, 481:109783 pii:S0378-5955(26)00254-6 [Epub ahead of print].
Auditory processing deficits are a prominent early feature of Alzheimer's disease (AD), yet whether they reflect generalized cognitive slowing or domain-specific neural degradation remains unclear. This study combined a categorical perception paradigm with high-temporal-resolution electroencephalography (EEG) to evaluate neural responses to distinct combinations of acoustic cues, rapid temporal dynamics (consonants) versus stable spectral configurations (lexical tones), across a continuum of healthy aging, mild cognitive impairment (MCI), and AD. Rather than a monolithic functional loss, behavioral analysis revealed a differential vulnerability: while psychomotor slowing was global, categorical precision collapsed specifically for rapid consonant cues but remained remarkably resilient for tones. Neurophysiologically, this divergence was underpinned by a distinct trajectory transitioning from successful compensatory hyper-activation in normal aging to a state of inefficient hyper-activation in clinical cohorts, characterized by sustained P300 amplitudes but severe temporal processing delays. Crucially, we demonstrated the clinical utility of these domain-specific electrophysiological signatures using a fivefold cross-validated machine learning approach. Advanced classification algorithms, notably the gradient boosting machine (GBM), distinguished participants with MCI from cognitively normal older adults with an area under the receiver operating characteristic curve (AUC) of 0.836. These findings reframe auditory deficits in dementia as a nuanced erosion of specific neural codes and highlight the efficacy of interpretable, EEG-based neurocomputational tools for the early clinical screening of pre-dementia states.
Additional Links: PMID-42648141
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42648141,
year = {2026},
author = {Gao, X and Ma, D and Liu, R and Guo, T and Dong, Z and Yan, J and Huang, J},
title = {Domain-specific deficits in categorical perception unveil the neural architecture of auditory agnosia in dementia.},
journal = {Hearing research},
volume = {481},
number = {},
pages = {109783},
doi = {10.1016/j.heares.2026.109783},
pmid = {42648141},
issn = {1878-5891},
abstract = {Auditory processing deficits are a prominent early feature of Alzheimer's disease (AD), yet whether they reflect generalized cognitive slowing or domain-specific neural degradation remains unclear. This study combined a categorical perception paradigm with high-temporal-resolution electroencephalography (EEG) to evaluate neural responses to distinct combinations of acoustic cues, rapid temporal dynamics (consonants) versus stable spectral configurations (lexical tones), across a continuum of healthy aging, mild cognitive impairment (MCI), and AD. Rather than a monolithic functional loss, behavioral analysis revealed a differential vulnerability: while psychomotor slowing was global, categorical precision collapsed specifically for rapid consonant cues but remained remarkably resilient for tones. Neurophysiologically, this divergence was underpinned by a distinct trajectory transitioning from successful compensatory hyper-activation in normal aging to a state of inefficient hyper-activation in clinical cohorts, characterized by sustained P300 amplitudes but severe temporal processing delays. Crucially, we demonstrated the clinical utility of these domain-specific electrophysiological signatures using a fivefold cross-validated machine learning approach. Advanced classification algorithms, notably the gradient boosting machine (GBM), distinguished participants with MCI from cognitively normal older adults with an area under the receiver operating characteristic curve (AUC) of 0.836. These findings reframe auditory deficits in dementia as a nuanced erosion of specific neural codes and highlight the efficacy of interpretable, EEG-based neurocomputational tools for the early clinical screening of pre-dementia states.},
}
RevDate: 2026-08-26
Exome analysis of 22,319 individuals links extremely rare copy-number variants and 22q11.21 dosage to Alzheimer risk.
American journal of human genetics pii:S0002-9297(26)00279-X [Epub ahead of print].
Copy-number variants (CNVs) are major contributors to human disease. In Alzheimer disease (AD), APP duplications cause autosomal-dominant forms, but the role of CNVs in non-monogenic AD remains poorly characterized. We analyzed rare CNVs (frequency <1%) from 22,319 exomes (4,150 early-onset AD [EOAD, ≤65 years], 8,519 late-onset AD [LOAD], 9,650 unaffected control subjects) using harmonized calling and quality control. After identifying 17 individuals with a pathogenic CNV, we performed exome-wide and gene-set burden analyses. EOAD-affected individuals showed increased burdens of rare CNVs affecting coding genes, particularly deletions in AD-related genes. Integrated loss-of-function (LoF) analysis gathering short truncating variants with deletions showed that ABCA1 (odds ratio [OR] = 5.77 [95% confidence interval 2.25; 17.06], p = 0.0002) and ABCA7 deletions contribute to this deletion burden (OR = 2.29 [1.44; 3.65], p = 0.0006), while CTSB LoF alleles appear as candidates (OR = 5.03 [1.50; 20.71], p = 0.0089). We then performed exome-wide gene-level dosage analysis and highlighted 18 genes across five loci with a false discovery rate of <10%, including the 22q11.21 central region, where deletions were restricted to EOAD (including one de novo event) and duplications were enriched in control individuals, with intermediate frequencies in LOAD. We narrowed this locus to the SCARF2-KLHL22-MED15 region after integrating short truncating variants. Replication in 33,977 affected individuals and 362,322 control subjects confirmed association for 22q11.21 dosage with exome-wide significance (ORSCARF2 = 0.34 [0.21; 0.53]; mega-p value = 5.52 × 10[-7]). SCARF2 overexpression significantly increased amyloid-β uptake, congruent with duplication-associated decreased AD risk. We conclude that rare coding CNVs in a proportion of AD-associated genes and 22q11.21 deletions, including some found in DiGeorge syndrome, increase AD risk. Conversely, we identify 22q11.21 duplication as a strong AD-risk-decreasing factor.
Additional Links: PMID-42648288
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42648288,
year = {2026},
author = {Quenez, O and Schramm, C and Cassinari, K and Nicolas, A and Groeneveld, J and Huguet, G and Grenier-Boley, B and Hulsman, M and Walters, GB and de Rojas, I and Rovelet-Lecrux, A and Feuillette, S and Miguel, L and Richard, AC and Rousseau, S and Ahmad, S and Amin, N and Amouyel, P and Belbin, O and Bellenguez, C and Berr, C and Bossù, P and Bouwman, F and Bras, J and Clarimon, J and Daniele, A and Dartigues, JF and Debette, S and Deleuze, JF and Denning, N and Dols-Icardo, O and van Duijn, CM and Fortea, J and Fox, NC and Frikke-Schmidt, R and Galimberti, D and Ghidoni, R and Giedraitis, V and Gille, JJP and Grozeva, D and Guerreiro, R and Grünblatt, E and Hardy, J and Riedel-Heller, SG and Hiltunen, M and Holmes, C and Hort, J and Hummerich, H and Ikram, MA and Ikram, MK and Ingelsson, M and Jansen, IE and Kawalia, A and Kraaij, R and Kehoe, PG and Lathrop, M and Lacour, M and Lemstra, AW and Lleó, A and Luckcuck, L and Mannens, MMAM and Marshall, R and Masullo, C and Mead, S and Mecocci, P and de Mendonça, A and Meggy, A and Mehrabian, S and Mol, MO and Morgan, K and Morin, A and Nacmias, B and Norsworthy, PJ and Olaso, R and Pasquier, F and Pastor, P and Piras, F and Popp, J and Ramirez, A and Raybould, R and Redon, R and Reinders, MJT and Rivadeneira, F and van Rooij, JGJ and Ryan, NS and Saad, S and Sanchez-Juan, P and Scarmeas, N and Scheltens, P and Schott, JM and Seripa, D and Sie, D and Sims, R and Sistermans, EA and Sorbi, S and Sleegers, K and van Spaendonk, R and van Swieten, JC and Tesi, N and Tijms, BM and Tsolaki, M and Uitterlinden, AG and Vijverberg, J and Visser, PJ and Wagner, M and Williams, J and Zarea, A and , and Génin, E and Holstege, H and Gudbjartsson, DF and Wallon, D and Lecourtois, M and Fernandez, MV and Stefansson, H and Jacquemont, S and Lambert, JC and van der Lee, SJ and Charbonnier, C and Nicolas, G},
title = {Exome analysis of 22,319 individuals links extremely rare copy-number variants and 22q11.21 dosage to Alzheimer risk.},
journal = {American journal of human genetics},
volume = {},
number = {},
pages = {},
doi = {10.1016/j.ajhg.2026.07.013},
pmid = {42648288},
issn = {1537-6605},
abstract = {Copy-number variants (CNVs) are major contributors to human disease. In Alzheimer disease (AD), APP duplications cause autosomal-dominant forms, but the role of CNVs in non-monogenic AD remains poorly characterized. We analyzed rare CNVs (frequency <1%) from 22,319 exomes (4,150 early-onset AD [EOAD, ≤65 years], 8,519 late-onset AD [LOAD], 9,650 unaffected control subjects) using harmonized calling and quality control. After identifying 17 individuals with a pathogenic CNV, we performed exome-wide and gene-set burden analyses. EOAD-affected individuals showed increased burdens of rare CNVs affecting coding genes, particularly deletions in AD-related genes. Integrated loss-of-function (LoF) analysis gathering short truncating variants with deletions showed that ABCA1 (odds ratio [OR] = 5.77 [95% confidence interval 2.25; 17.06], p = 0.0002) and ABCA7 deletions contribute to this deletion burden (OR = 2.29 [1.44; 3.65], p = 0.0006), while CTSB LoF alleles appear as candidates (OR = 5.03 [1.50; 20.71], p = 0.0089). We then performed exome-wide gene-level dosage analysis and highlighted 18 genes across five loci with a false discovery rate of <10%, including the 22q11.21 central region, where deletions were restricted to EOAD (including one de novo event) and duplications were enriched in control individuals, with intermediate frequencies in LOAD. We narrowed this locus to the SCARF2-KLHL22-MED15 region after integrating short truncating variants. Replication in 33,977 affected individuals and 362,322 control subjects confirmed association for 22q11.21 dosage with exome-wide significance (ORSCARF2 = 0.34 [0.21; 0.53]; mega-p value = 5.52 × 10[-7]). SCARF2 overexpression significantly increased amyloid-β uptake, congruent with duplication-associated decreased AD risk. We conclude that rare coding CNVs in a proportion of AD-associated genes and 22q11.21 deletions, including some found in DiGeorge syndrome, increase AD risk. Conversely, we identify 22q11.21 duplication as a strong AD-risk-decreasing factor.},
}
RevDate: 2026-08-26
40 Hz noninvasive transcranial ultrasound stimulation modulates multiscale nonlinear dynamics of hippocampal CA1 neural oscillations of Alzheimer's mouse model.
Journal of neural engineering [Epub ahead of print].
Aberrant nonlinear dynamics of hippocampal neural oscillations are a hallmark of early network dysfunction in Alzheimer's disease (AD), with critical roles in memory processing. Although transcranial ultrasound stimulation (TUS) has shown cognitive benefits in AD models and patients, its effects on the nonlinear dynamics of hippocampal CA1 oscillations and their multiscale organization remain unclear. Approach. Here, we applied 40 Hz non-invasive TUS to the hippocampal CA1 region of AD mouse model and recorded local field potentials before, during, and after stimulation. Analyses integrated nonlinear dynamical metrics, power spectral dependencies, cross-frequency coupling, and event-level oscillatory features. Main results. We found that (1) 40 Hz TUS decreases complexity and irregularity of CA1 activity, and enhances dynamical activity and long-range temporal correlations in broadband and high-frequency ranges, increases complexity in the theta and beta bands. (2) TUS also significantly reduced theta-gamma and intra-gamma phase-amplitude coupling, while producing frequency-specific changes in the rate, amplitude, duration, and temporal organization of theta, gamma, and ripple events. (3) Furthermore, the relationship between nonlinear dynamics and power spectral density was modulated across stimulation phases. Significance. 40 Hz TUS can modulate multiscale nonlinear dynamics of neural oscillations in hippocampal CA1 of Alzheimer's mouse model, which lays a theoretical foundation for the clinical intervention of Alzheimer's disease via ultrasound stimulation. .
Additional Links: PMID-42648310
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42648310,
year = {2026},
author = {Chen, J and Ji, H and Yuan, Y},
title = {40 Hz noninvasive transcranial ultrasound stimulation modulates multiscale nonlinear dynamics of hippocampal CA1 neural oscillations of Alzheimer's mouse model.},
journal = {Journal of neural engineering},
volume = {},
number = {},
pages = {},
doi = {10.1088/1741-2552/ae9eed},
pmid = {42648310},
issn = {1741-2552},
abstract = {Aberrant nonlinear dynamics of hippocampal neural oscillations are a hallmark of early network dysfunction in Alzheimer's disease (AD), with critical roles in memory processing. Although transcranial ultrasound stimulation (TUS) has shown cognitive benefits in AD models and patients, its effects on the nonlinear dynamics of hippocampal CA1 oscillations and their multiscale organization remain unclear. Approach. Here, we applied 40 Hz non-invasive TUS to the hippocampal CA1 region of AD mouse model and recorded local field potentials before, during, and after stimulation. Analyses integrated nonlinear dynamical metrics, power spectral dependencies, cross-frequency coupling, and event-level oscillatory features. Main results. We found that (1) 40 Hz TUS decreases complexity and irregularity of CA1 activity, and enhances dynamical activity and long-range temporal correlations in broadband and high-frequency ranges, increases complexity in the theta and beta bands. (2) TUS also significantly reduced theta-gamma and intra-gamma phase-amplitude coupling, while producing frequency-specific changes in the rate, amplitude, duration, and temporal organization of theta, gamma, and ripple events. (3) Furthermore, the relationship between nonlinear dynamics and power spectral density was modulated across stimulation phases. Significance. 40 Hz TUS can modulate multiscale nonlinear dynamics of neural oscillations in hippocampal CA1 of Alzheimer's mouse model, which lays a theoretical foundation for the clinical intervention of Alzheimer's disease via ultrasound stimulation. .},
}
RevDate: 2026-08-26
Use of high-affinity scFv antibody NUsc1 for isolation and sensitive detection of Alzheimer's-associated amyloid beta oligomers.
The Journal of biological chemistry pii:S0021-9258(26)02371-9 [Epub ahead of print].
Alzheimer's disease (AD) is a progressive neurodegenerative disorder in which soluble amyloid-beta oligomers (AβOs) play a key role in disease onset and progression. This study further explores NUsc1, a single-chain variable fragment (scFv) antibody with high specificity for neurotoxic AβOs over monomers or fibrils, to selectively isolate and assist characterization of AβO species. NUsc1 binds AβOs with a kinetic dissociation constant under 10nM, comparable to the affinity of Leqembi for protofibrils. NUsc1 inhibits aggregation of AβOs into protofibrillar and fibrillar structures and blocks AβO binding to cultured hippocampal neurons in a dose-dependent manner, with an IC50 of ∼100nM in experiments using 2.25ng/μL AβOs. Selectivity and high affinity of NUsc1 enabled immunoprecipitation of AβOs under non-denaturing conditions. Atomic force microscopy revealed globular NUsc1-AβO complexes with a z-height of ∼3-4 nm, while free NUsc1 measured ∼1.5nm. Mass spectrometry revealed a heterogeneous population of NUsc1-isolated AβOs, consistent with a stepwise species assembly, while non-denaturing size-exclusion chromatography revealed species of approximately 70kDa. In ELISA, phage-bound NUsc1 (pbNUsc1) detected ∼12pM AβOs, a 33-fold increase in detection sensitivity compared to a commercial anti-Aβ antibody. NUsc1 also detected AβOs from 5xFAD mouse brain extracts, cerebrospinal fluid from AD rats, and, notably, from CSF of human donors, demonstrating direct detection of AD-relevant oligomers in a clinically relevant human biofluid. Collectively, these results highlight NUsc1's promise not only as a powerful research tool for structural and mechanistic studies of AβOs but also as a highly sensitive diagnostic tool for clinical use.
Additional Links: PMID-42648361
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42648361,
year = {2026},
author = {Maria de Campos, R and Carraro, MF and Brandão Bitencourt, AL and Jerisha, JJ and Ayon, NJ and Juska, VB and Pinheiro, NR and Johnson, EA and Nowar, RN and McGee, JP and Alfaro, ME and Oberholzer, MV and Grippo, V and Cline, EN and Viola, KL and Kelleher, NL and Habif, M and Jerusalinsky, DA and Shekhawat, GS and Elmor, MB and Lah, JJ and Levey, AI and Klein, WL and Sebollela, A},
title = {Use of high-affinity scFv antibody NUsc1 for isolation and sensitive detection of Alzheimer's-associated amyloid beta oligomers.},
journal = {The Journal of biological chemistry},
volume = {},
number = {},
pages = {113499},
doi = {10.1016/j.jbc.2026.113499},
pmid = {42648361},
issn = {1083-351X},
abstract = {Alzheimer's disease (AD) is a progressive neurodegenerative disorder in which soluble amyloid-beta oligomers (AβOs) play a key role in disease onset and progression. This study further explores NUsc1, a single-chain variable fragment (scFv) antibody with high specificity for neurotoxic AβOs over monomers or fibrils, to selectively isolate and assist characterization of AβO species. NUsc1 binds AβOs with a kinetic dissociation constant under 10nM, comparable to the affinity of Leqembi for protofibrils. NUsc1 inhibits aggregation of AβOs into protofibrillar and fibrillar structures and blocks AβO binding to cultured hippocampal neurons in a dose-dependent manner, with an IC50 of ∼100nM in experiments using 2.25ng/μL AβOs. Selectivity and high affinity of NUsc1 enabled immunoprecipitation of AβOs under non-denaturing conditions. Atomic force microscopy revealed globular NUsc1-AβO complexes with a z-height of ∼3-4 nm, while free NUsc1 measured ∼1.5nm. Mass spectrometry revealed a heterogeneous population of NUsc1-isolated AβOs, consistent with a stepwise species assembly, while non-denaturing size-exclusion chromatography revealed species of approximately 70kDa. In ELISA, phage-bound NUsc1 (pbNUsc1) detected ∼12pM AβOs, a 33-fold increase in detection sensitivity compared to a commercial anti-Aβ antibody. NUsc1 also detected AβOs from 5xFAD mouse brain extracts, cerebrospinal fluid from AD rats, and, notably, from CSF of human donors, demonstrating direct detection of AD-relevant oligomers in a clinically relevant human biofluid. Collectively, these results highlight NUsc1's promise not only as a powerful research tool for structural and mechanistic studies of AβOs but also as a highly sensitive diagnostic tool for clinical use.},
}
RevDate: 2026-08-26
Endolysosomal inhibition uncouples tau uptake from intracellular seeding.
The Journal of biological chemistry pii:S0021-9258(26)02370-7 [Epub ahead of print].
Neurodegenerative tauopathies, including Alzheimer's disease, appear to be driven by propagation of tau assemblies, which must access the cytoplasm to recruit monomer and self-replicate, a process termed "seeding." The prevailing model holds that tau seeds enter cells via macropinocytosis and reach the cytosol through lysosomal rupture or micro-perforation. Our findings revise this model by revealing that endocytosis is not required for seeding. Using genome-scale CRISPR screening, we identified multiple v-ATPase components whose loss reduced tau uptake (measured by flow cytometry) yet paradoxically increased seeding (measured by FRET biosensors). Acute v-ATPase inhibition with bafilomycin A1 produced the same effect in v2L tau biosensors and iPSC-derived neurons. Among regulators of endosome maturation, dominant-negative Rab5a decreased internalization while enhancing cytoplasmic templating. Cholesterol depletion produced identical results. Strikingly, transient hypothermia eliminated virtually all detectable tau uptake and dramatically increased seeding, without affecting subsequent tau monomer or aggregate degradation. We conclude that efficient endolysosomal trafficking does not appear to be required for cytoplasmic seeding under the conditions studied here. Across diverse perturbations, reduced endolysosomal flux consistently enhanced tau seeding, consistent with prior work indicating that most internalized aggregates are routed toward degradation rather than amplification. To seed effectively, tau must cross the plasma or vesicular membranes into the cytoplasm. We have found that proper endolysosomal trafficking suppresses cytoplasmic tau seeding, as all perturbations augmented this process. These findings reframe the role of the endolysosomal system in tau seeding and identify membrane transit rather than macropinocytosis itself as a critical gateway to cytoplasmic tau amplification.
Additional Links: PMID-42648363
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42648363,
year = {2026},
author = {Dodd, DA and LaCroix, MS and Valdez, C and Mendoza-Oliva, A and Beaver, JD and Vega, AR and Kumar, A and Xing, C and White, CL and Diamond, MI},
title = {Endolysosomal inhibition uncouples tau uptake from intracellular seeding.},
journal = {The Journal of biological chemistry},
volume = {},
number = {},
pages = {113498},
doi = {10.1016/j.jbc.2026.113498},
pmid = {42648363},
issn = {1083-351X},
abstract = {Neurodegenerative tauopathies, including Alzheimer's disease, appear to be driven by propagation of tau assemblies, which must access the cytoplasm to recruit monomer and self-replicate, a process termed "seeding." The prevailing model holds that tau seeds enter cells via macropinocytosis and reach the cytosol through lysosomal rupture or micro-perforation. Our findings revise this model by revealing that endocytosis is not required for seeding. Using genome-scale CRISPR screening, we identified multiple v-ATPase components whose loss reduced tau uptake (measured by flow cytometry) yet paradoxically increased seeding (measured by FRET biosensors). Acute v-ATPase inhibition with bafilomycin A1 produced the same effect in v2L tau biosensors and iPSC-derived neurons. Among regulators of endosome maturation, dominant-negative Rab5a decreased internalization while enhancing cytoplasmic templating. Cholesterol depletion produced identical results. Strikingly, transient hypothermia eliminated virtually all detectable tau uptake and dramatically increased seeding, without affecting subsequent tau monomer or aggregate degradation. We conclude that efficient endolysosomal trafficking does not appear to be required for cytoplasmic seeding under the conditions studied here. Across diverse perturbations, reduced endolysosomal flux consistently enhanced tau seeding, consistent with prior work indicating that most internalized aggregates are routed toward degradation rather than amplification. To seed effectively, tau must cross the plasma or vesicular membranes into the cytoplasm. We have found that proper endolysosomal trafficking suppresses cytoplasmic tau seeding, as all perturbations augmented this process. These findings reframe the role of the endolysosomal system in tau seeding and identify membrane transit rather than macropinocytosis itself as a critical gateway to cytoplasmic tau amplification.},
}
RevDate: 2026-08-26
Cerebral amyloid-β burden and white matter injury: associations, clues for underlying mechanisms, and implication on cognitive trajectory after lecanemab therapy.
Journal of advanced research pii:S2090-1232(26)00689-2 [Epub ahead of print].
INTRODUCTION: White matter hyperintensities (WMH) are linked to cognitive decline and risk of Alzheimer's disease (AD).
OBJECTIVES: To test whether amyloid-β (Aβ) deposition contributes to white matter injury and whether WMH dynamics can modulate the clinical efficacy of the anti-Aβ therapy.
METHODS: Twenty patients with early AD who are receiving lecanemab and a matched cohort of 110 untreated AD patients were followed. Linear mixed-effects models were used to examine the interplay between WMH trajectories and lecanemab on cognitive decline. The roles of Aβ burden in predicting baseline severity and progression rates of WMH were evaluated in a larger cohort of 1,031 adults. Finally, cerebrospinal fluid (CSF) proteomic and bioinformatic analyses were performed to identify potential candidate mediators and pathways linking Aβ to WMH progression.
RESULTS: Following lecanemab treatment (median = 13 times), 80 % of patients showed WMH reductions, predominantly in periventricular and frontoparietal regions. Compared to the reference cohort, WMH progression is significantly slower among those with anti-Aβ therapy. WMH trajectory significantly modified the relationship between anti-Aβ therapy and cognitive decline, with greater cognitive improvement observed among those with smaller WMH reductions. The levels of Aβ burden were correlated with higher burden and accelerated rates of WMH. Eight proteins in CSF were identified as candidate mediators linking WMH to Aβ. They were enriched in vascular-endothelial, neuro-cytoskeletal, and neuroinflammation pathways.
CONCLUSION: The interplay of Aβ with white matter integrity contributes to cognitive decline in the context of Alzheimer's disease.
Additional Links: PMID-42648539
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42648539,
year = {2026},
author = {Shi, K and Luo, XY and Liu, TT and Liu, WZ and Dong, YF and Zheng, FB and Zhou, X and Xing, JS and Sun, ZH and Chen, QQ and Jiang, L and Tan, CC and Tan, L and Xu, W and , },
title = {Cerebral amyloid-β burden and white matter injury: associations, clues for underlying mechanisms, and implication on cognitive trajectory after lecanemab therapy.},
journal = {Journal of advanced research},
volume = {},
number = {},
pages = {},
doi = {10.1016/j.jare.2026.08.057},
pmid = {42648539},
issn = {2090-1224},
abstract = {INTRODUCTION: White matter hyperintensities (WMH) are linked to cognitive decline and risk of Alzheimer's disease (AD).
OBJECTIVES: To test whether amyloid-β (Aβ) deposition contributes to white matter injury and whether WMH dynamics can modulate the clinical efficacy of the anti-Aβ therapy.
METHODS: Twenty patients with early AD who are receiving lecanemab and a matched cohort of 110 untreated AD patients were followed. Linear mixed-effects models were used to examine the interplay between WMH trajectories and lecanemab on cognitive decline. The roles of Aβ burden in predicting baseline severity and progression rates of WMH were evaluated in a larger cohort of 1,031 adults. Finally, cerebrospinal fluid (CSF) proteomic and bioinformatic analyses were performed to identify potential candidate mediators and pathways linking Aβ to WMH progression.
RESULTS: Following lecanemab treatment (median = 13 times), 80 % of patients showed WMH reductions, predominantly in periventricular and frontoparietal regions. Compared to the reference cohort, WMH progression is significantly slower among those with anti-Aβ therapy. WMH trajectory significantly modified the relationship between anti-Aβ therapy and cognitive decline, with greater cognitive improvement observed among those with smaller WMH reductions. The levels of Aβ burden were correlated with higher burden and accelerated rates of WMH. Eight proteins in CSF were identified as candidate mediators linking WMH to Aβ. They were enriched in vascular-endothelial, neuro-cytoskeletal, and neuroinflammation pathways.
CONCLUSION: The interplay of Aβ with white matter integrity contributes to cognitive decline in the context of Alzheimer's disease.},
}
RevDate: 2026-08-26
Non-linear association of blood urea nitrogen with low cognitive performance: Translational evidence from murine models and human population analysis.
Experimental neurology pii:S0014-4886(26)00362-6 [Epub ahead of print].
BACKGROUND: Cognitive impairment in Alzheimer's disease (AD) is increasingly recognized as a systemic metabolic disorder, yet early peripheral biomarkers remain elusive. The kidney-brain axis offers a novel perspective, but the association between blood urea nitrogen (BUN) and Cognitive function is poorly understood.
METHODS: We integrated murine models (5xFAD vs. wild-type), human NHANES data (n = 3435), and single-cell virtual knockout of the BUN-associated gene GLS in human kidney cells.
RESULTS: 5xFAD mice showed early renal histopathological damage and memory deficits; BUN positively correlated with fear memory retention, and reduced BUN in 5xFAD aligned with the low-BUN risk limb of the human non-linear association. In humans, restricted cubic splines revealed a significant inverse association between BUN and low cognitive performance (LCP), with the risk reduction plateauing at BUN levels above approximately 12 mg/dL. Subgroup analyses showed no significant interactions for any of the examined variables, indicating that the inverse association between BUN and LCP was consistent across population strata. Exploratory GLS knockout upregulated mitochondrial oxidative phosphorylation and ROS pathways, providing hypothesis-generating molecular clues.
CONCLUSIONS: Cross-species evidence links BUN to cognitive, with murine data consistent with human low-BUN risk and identifying a significant inverse association between BUN and LCP that plateaued above approximately 12 mg/dL in this older adult cohort in this cohort, which should be viewed as exploratory and requires validation in independent prospective cohorts. Virtual GLS knockout suggests a mitochondrial axis. BUN warrants further evaluation as an accessible biomarker for cognitive risk assessment.
Additional Links: PMID-42648589
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42648589,
year = {2026},
author = {Zhang, R and Yu, T and Hao, K and Yu, Y and Chen, L and Cheng, X},
title = {Non-linear association of blood urea nitrogen with low cognitive performance: Translational evidence from murine models and human population analysis.},
journal = {Experimental neurology},
volume = {},
number = {},
pages = {115996},
doi = {10.1016/j.expneurol.2026.115996},
pmid = {42648589},
issn = {1090-2430},
abstract = {BACKGROUND: Cognitive impairment in Alzheimer's disease (AD) is increasingly recognized as a systemic metabolic disorder, yet early peripheral biomarkers remain elusive. The kidney-brain axis offers a novel perspective, but the association between blood urea nitrogen (BUN) and Cognitive function is poorly understood.
METHODS: We integrated murine models (5xFAD vs. wild-type), human NHANES data (n = 3435), and single-cell virtual knockout of the BUN-associated gene GLS in human kidney cells.
RESULTS: 5xFAD mice showed early renal histopathological damage and memory deficits; BUN positively correlated with fear memory retention, and reduced BUN in 5xFAD aligned with the low-BUN risk limb of the human non-linear association. In humans, restricted cubic splines revealed a significant inverse association between BUN and low cognitive performance (LCP), with the risk reduction plateauing at BUN levels above approximately 12 mg/dL. Subgroup analyses showed no significant interactions for any of the examined variables, indicating that the inverse association between BUN and LCP was consistent across population strata. Exploratory GLS knockout upregulated mitochondrial oxidative phosphorylation and ROS pathways, providing hypothesis-generating molecular clues.
CONCLUSIONS: Cross-species evidence links BUN to cognitive, with murine data consistent with human low-BUN risk and identifying a significant inverse association between BUN and LCP that plateaued above approximately 12 mg/dL in this older adult cohort in this cohort, which should be viewed as exploratory and requires validation in independent prospective cohorts. Virtual GLS knockout suggests a mitochondrial axis. BUN warrants further evaluation as an accessible biomarker for cognitive risk assessment.},
}
RevDate: 2026-08-26
CmpDate: 2026-08-26
Astrocyte-Predominant Tau Pathology in a Patient With VCP R191Q Variant.
Neuropathology : official journal of the Japanese Society of Neuropathology, 46(5):e70075.
Variants in the valosin-containing protein (VCP) gene cause multisystem proteinopathy, typically characterized by TDP-43 pathology. However, there are few reports describing tau pathology in VCP variant carriers. Here, we report a Japanese woman carrying a heterozygous VCP R191Q variant, who developed progressive muscle weakness, frontotemporal dementia, and parkinsonism beginning in her mid-forties and died at the age of 61. Neuropathological examination demonstrated FTLD-TDP type D pathology involving the frontal and temporal cortices, limbic structures, brainstem, spinal cord, and skeletal muscle. In addition, a distinct pattern of tau pathology was identified, predominantly in astrocytes and extending from the lower brainstem throughout the spinal cord. Tau aggregates were distributed in perivascular, subpial, and central gray matter, with a rostrocaudal distribution. Immunohistochemistry and confocal microscopy demonstrated colocalization of 3-repeat (3R) and 4-repeat (4R) tau within astrocytes, with predominance of 3R tau. Western blot analysis confirmed these findings and showed a tau banding pattern similar to that in Alzheimer's disease. These features differ from those observed in disorders with astrocytic tau pathology, such as cervical spondylotic myelopathy, chronic traumatic encephalopathy, and aging-related tau astrogliopathy, which are typically characterized by predominance of 4R tau and minimal or absent 3R tau involvement. They also differ from the neuronal tau pathology observed in the frontotemporal cortex in patients with the VCP D395G variant. This case expands the neuropathological spectrum of VCP-related diseases and suggests a possible association between VCP variants and pathological tau aggregation.
Additional Links: PMID-42648719
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42648719,
year = {2026},
author = {Taniguchi, D and Tsuyama, K and Hatano, T and Ashizawa, K and Yao, T and Fujimaki, M and Kanai, K and Li, Y and Funayama, M and Hattori, N},
title = {Astrocyte-Predominant Tau Pathology in a Patient With VCP R191Q Variant.},
journal = {Neuropathology : official journal of the Japanese Society of Neuropathology},
volume = {46},
number = {5},
pages = {e70075},
doi = {10.1111/neup.70075},
pmid = {42648719},
issn = {1440-1789},
support = {JP25wm0625126//Japan Agency for Medical Research and Development/ ; JP25wm0625127//Japan Agency for Medical Research and Development/ ; JP25K18969//Japan Society for the Promotion of Science (JSPS)/ ; JP24K02373//Japan Society for the Promotion of Science (JSPS)/ ; },
mesh = {Humans ; Female ; *Valosin Containing Protein/genetics ; *tau Proteins/metabolism ; *Astrocytes/pathology/metabolism ; Middle Aged ; Frontotemporal Dementia/pathology/genetics ; Brain/pathology/metabolism ; },
abstract = {Variants in the valosin-containing protein (VCP) gene cause multisystem proteinopathy, typically characterized by TDP-43 pathology. However, there are few reports describing tau pathology in VCP variant carriers. Here, we report a Japanese woman carrying a heterozygous VCP R191Q variant, who developed progressive muscle weakness, frontotemporal dementia, and parkinsonism beginning in her mid-forties and died at the age of 61. Neuropathological examination demonstrated FTLD-TDP type D pathology involving the frontal and temporal cortices, limbic structures, brainstem, spinal cord, and skeletal muscle. In addition, a distinct pattern of tau pathology was identified, predominantly in astrocytes and extending from the lower brainstem throughout the spinal cord. Tau aggregates were distributed in perivascular, subpial, and central gray matter, with a rostrocaudal distribution. Immunohistochemistry and confocal microscopy demonstrated colocalization of 3-repeat (3R) and 4-repeat (4R) tau within astrocytes, with predominance of 3R tau. Western blot analysis confirmed these findings and showed a tau banding pattern similar to that in Alzheimer's disease. These features differ from those observed in disorders with astrocytic tau pathology, such as cervical spondylotic myelopathy, chronic traumatic encephalopathy, and aging-related tau astrogliopathy, which are typically characterized by predominance of 4R tau and minimal or absent 3R tau involvement. They also differ from the neuronal tau pathology observed in the frontotemporal cortex in patients with the VCP D395G variant. This case expands the neuropathological spectrum of VCP-related diseases and suggests a possible association between VCP variants and pathological tau aggregation.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
Female
*Valosin Containing Protein/genetics
*tau Proteins/metabolism
*Astrocytes/pathology/metabolism
Middle Aged
Frontotemporal Dementia/pathology/genetics
Brain/pathology/metabolism
RevDate: 2026-08-26
CmpDate: 2026-08-26
A lyophilized CHA-lateral flow platform for point-of-care detection of miR-106b-5p from L1CAM-Immunocaptured small extracellular vesicles in Alzheimer's disease.
Analytica chimica acta, 1420:345938.
The early, non-invasive diagnosis of Alzheimer's disease (AD) remains a significant clinical challenge. MicroRNAs carried by L1CAM-immunocaptured small extracellular vesicles (sEVs) in blood, particularly miR-106b-5p, have emerged as promising candidate biomarkers for AD. However, their detection requires methods that are sensitive, specific, stable, and suitable for point-of-care (POC) applications. Catalytic hairpin assembly (CHA) combined with lateral flow immunoassay (LFIA) offers a potential POC solution, but its practical application is limited by high background leakage caused by "DNA breathing" and poor probe stability. Herein, we propose an integrated POC platform that combines immunomagnetic enrichment of L1CAM-positive sEVs with a novel "Fold-Adsorb-Block-Immobilize-Lyophilize" (FABIL) process for CHA probe stabilization. The FABIL process utilizes magnetic graphene oxide (MGO) to adsorb and physically separate hairpin probes (H1 and H2), thereby suppressing nonspecific hybridization and generating lyophilized CHA microspheres with room-temperature stability. When integrated into a lateral flow test strip, the FABIL-NE-miR platform achieves a visual detection limit of 10 fM and a liquid-phase limit of detection of 1.14 fM, overcoming the traditional trade-off between low background and high sensitivity. Clinical validation using 100 serum samples, including 32 AD cases and 68 non-AD controls, demonstrated that FABIL-NE-miR outperformed traditional low-background CHA systems, with an area under the ROC curve (AUC) of 0.9563, a sensitivity of 90.63%, and a specificity of 94.12%. Overall, the FABIL-NE-miR platform enables rapid visual detection of low-abundance AD-associated miRNAs from L1CAM-immunocaptured sEV fractions. By addressing key challenges such as background leakage and probe instability, this study provides a practical tool for AD screening and supports the feasibility of the FABIL strategy as a universal platform for next-generation nucleic acid diagnostics.
Additional Links: PMID-42648816
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42648816,
year = {2026},
author = {Xu, R and Chen, H and Zhao, C and Ding, X},
title = {A lyophilized CHA-lateral flow platform for point-of-care detection of miR-106b-5p from L1CAM-Immunocaptured small extracellular vesicles in Alzheimer's disease.},
journal = {Analytica chimica acta},
volume = {1420},
number = {},
pages = {345938},
doi = {10.1016/j.aca.2026.345938},
pmid = {42648816},
issn = {1873-4324},
mesh = {*MicroRNAs/blood ; Humans ; *Alzheimer Disease/diagnosis/blood ; *Point-of-Care Systems ; *Neural Cell Adhesion Molecule L1/immunology/chemistry ; *Extracellular Vesicles/chemistry/metabolism ; Immunoassay/methods ; Freeze Drying ; Limit of Detection ; Rapid Diagnostic Tests ; },
abstract = {The early, non-invasive diagnosis of Alzheimer's disease (AD) remains a significant clinical challenge. MicroRNAs carried by L1CAM-immunocaptured small extracellular vesicles (sEVs) in blood, particularly miR-106b-5p, have emerged as promising candidate biomarkers for AD. However, their detection requires methods that are sensitive, specific, stable, and suitable for point-of-care (POC) applications. Catalytic hairpin assembly (CHA) combined with lateral flow immunoassay (LFIA) offers a potential POC solution, but its practical application is limited by high background leakage caused by "DNA breathing" and poor probe stability. Herein, we propose an integrated POC platform that combines immunomagnetic enrichment of L1CAM-positive sEVs with a novel "Fold-Adsorb-Block-Immobilize-Lyophilize" (FABIL) process for CHA probe stabilization. The FABIL process utilizes magnetic graphene oxide (MGO) to adsorb and physically separate hairpin probes (H1 and H2), thereby suppressing nonspecific hybridization and generating lyophilized CHA microspheres with room-temperature stability. When integrated into a lateral flow test strip, the FABIL-NE-miR platform achieves a visual detection limit of 10 fM and a liquid-phase limit of detection of 1.14 fM, overcoming the traditional trade-off between low background and high sensitivity. Clinical validation using 100 serum samples, including 32 AD cases and 68 non-AD controls, demonstrated that FABIL-NE-miR outperformed traditional low-background CHA systems, with an area under the ROC curve (AUC) of 0.9563, a sensitivity of 90.63%, and a specificity of 94.12%. Overall, the FABIL-NE-miR platform enables rapid visual detection of low-abundance AD-associated miRNAs from L1CAM-immunocaptured sEV fractions. By addressing key challenges such as background leakage and probe instability, this study provides a practical tool for AD screening and supports the feasibility of the FABIL strategy as a universal platform for next-generation nucleic acid diagnostics.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
*MicroRNAs/blood
Humans
*Alzheimer Disease/diagnosis/blood
*Point-of-Care Systems
*Neural Cell Adhesion Molecule L1/immunology/chemistry
*Extracellular Vesicles/chemistry/metabolism
Immunoassay/methods
Freeze Drying
Limit of Detection
Rapid Diagnostic Tests
RevDate: 2026-08-26
CmpDate: 2026-08-26
Multiplexed EDL-FET biosensor with tannic acid stabilization for simultaneous p-Tau217 and Aβ42/Aβ40 detection in plasma and whole blood from stroke patients.
Analytica chimica acta, 1420:345949.
Alzheimer's disease (AD) is a leading cause of disability in aging societies, underscoring the need for practical blood-based biomarker assays. Stroke patients face an elevated risk of AD-related cognitive impairment, yet reliable, scalable tools for early biomarker assessment in this population remain lacking. Current platforms are limited by low throughput, instability, and demanding sample preparation that restricts point-of-care translation. This study addresses the need for a multiplexed, clinically practical biosensor capable of simultaneously measuring AD-relevant biomarkers in both plasma and whole blood. An eight-channel electric double-layer field-effect transistor (EDL-FET) platform was developed to simultaneously measure phosphorylated tau (p-tau217) and the Aβ42/Aβ40 ratio in plasma and whole blood. Standardized surface modification with tannic acid (TA)-assisted antibody immobilization enabled stable chip performance under wet storage for at least 10 days. Clinically, 54 plasma and 32 whole-blood samples from stroke patients were stratified into cognitively impaired (MMSE ≤24) and unimpaired (MMSE >24) groups. p-tau217 significantly differentiated cognitive status in both matrices, with the strongest performance in plasma. Combining p-tau217 with Aβ42/Aβ40 in plasma yielded a receiver operating characteristic (ROC) area under the curve (AUC) of 0.938. Plasma p-tau217, alone or in combination, demonstrated higher sensitivity for detecting cognitive impairment, while whole-blood measurements offered practicality, with preserved sample integrity and minimal pre-analytical requirements. This work presents the first multiplexed EDL-FET platform for simultaneous AD biomarker profiling in stroke patients using both plasma and whole blood. The integration of p-tau217 and Aβ42/Aβ40 on a stable, multi-channel chip demonstrates a novel route toward point-of-care AD risk stratification in high-risk populations, pending validation in larger, multi-center cohorts.
Additional Links: PMID-42648826
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42648826,
year = {2026},
author = {Chien, SC and Chang, IY and Chen, YC and Lai, YZ and Chen, YF and Sun, PL and Li, BR and Wang, YL and Chen, JC},
title = {Multiplexed EDL-FET biosensor with tannic acid stabilization for simultaneous p-Tau217 and Aβ42/Aβ40 detection in plasma and whole blood from stroke patients.},
journal = {Analytica chimica acta},
volume = {1420},
number = {},
pages = {345949},
doi = {10.1016/j.aca.2026.345949},
pmid = {42648826},
issn = {1873-4324},
mesh = {Humans ; *Amyloid beta-Peptides/blood ; *Biosensing Techniques/methods/instrumentation ; *tau Proteins/blood ; *Stroke/blood ; *Tannins/chemistry ; Biomarkers/blood ; *Peptide Fragments/blood ; Female ; Male ; Aged ; Phosphorylation ; Polyphenols ; },
abstract = {Alzheimer's disease (AD) is a leading cause of disability in aging societies, underscoring the need for practical blood-based biomarker assays. Stroke patients face an elevated risk of AD-related cognitive impairment, yet reliable, scalable tools for early biomarker assessment in this population remain lacking. Current platforms are limited by low throughput, instability, and demanding sample preparation that restricts point-of-care translation. This study addresses the need for a multiplexed, clinically practical biosensor capable of simultaneously measuring AD-relevant biomarkers in both plasma and whole blood. An eight-channel electric double-layer field-effect transistor (EDL-FET) platform was developed to simultaneously measure phosphorylated tau (p-tau217) and the Aβ42/Aβ40 ratio in plasma and whole blood. Standardized surface modification with tannic acid (TA)-assisted antibody immobilization enabled stable chip performance under wet storage for at least 10 days. Clinically, 54 plasma and 32 whole-blood samples from stroke patients were stratified into cognitively impaired (MMSE ≤24) and unimpaired (MMSE >24) groups. p-tau217 significantly differentiated cognitive status in both matrices, with the strongest performance in plasma. Combining p-tau217 with Aβ42/Aβ40 in plasma yielded a receiver operating characteristic (ROC) area under the curve (AUC) of 0.938. Plasma p-tau217, alone or in combination, demonstrated higher sensitivity for detecting cognitive impairment, while whole-blood measurements offered practicality, with preserved sample integrity and minimal pre-analytical requirements. This work presents the first multiplexed EDL-FET platform for simultaneous AD biomarker profiling in stroke patients using both plasma and whole blood. The integration of p-tau217 and Aβ42/Aβ40 on a stable, multi-channel chip demonstrates a novel route toward point-of-care AD risk stratification in high-risk populations, pending validation in larger, multi-center cohorts.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
*Amyloid beta-Peptides/blood
*Biosensing Techniques/methods/instrumentation
*tau Proteins/blood
*Stroke/blood
*Tannins/chemistry
Biomarkers/blood
*Peptide Fragments/blood
Female
Male
Aged
Phosphorylation
Polyphenols
RevDate: 2026-08-26
Cholinergic dysfunction in Alzheimer's disease: Mechanistic perspectives and multi-target effects of traditional Chinese medicine.
Bioscience trends [Epub ahead of print].
Alzheimer's disease (AD) is a multifactorial neurodegenerative disorder characterized by progressive cognitive decline and complex pathological changes. Cholinergic dysfunction is an early, clinically pivotal feature of AD closely associated with multiple pathological processes, including amyloid-β (Aβ) pathology, neuroinflammatory responses, mitochondrial dysfunction, metal-ion dyshomeostasis, and apolipoprotein E (APOE) ε4-related vulnerability. While disrupted cholinergic signaling impairs memory formation and synaptic function, its bidirectional interaction with AD-related pathological cascades further accelerates disease progression. Traditional Chinese medicine (TCM) has been investigated as a potential multitarget approach with which to modulate cholinergic deficits and related pathological processes. Some TCM-derived compounds, standardized extracts, and formulas have been reported to regulate cholinergic enzymes, acetylcholine levels, cholinergic receptors, oxidative stress, mitochondrial function, neuroinflammatory responses, and Aβ- or tau-related pathology. This review summarizes the role of cholinergic failure in AD pathophysiology and evaluates the evidence surrounding TCM-based interventions, with emphasis on direct cholinergic evidence, indirect collateral mechanisms, and current translational limitations. Indeed, the purpose of these insights is to inform future development of multitarget therapeutic strategies for AD.
Additional Links: PMID-42649077
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42649077,
year = {2026},
author = {Wang, Y and Li, H and Hao, L and Guo, P and Xu, B and Cai, M and Li, S},
title = {Cholinergic dysfunction in Alzheimer's disease: Mechanistic perspectives and multi-target effects of traditional Chinese medicine.},
journal = {Bioscience trends},
volume = {},
number = {},
pages = {},
doi = {10.5582/bst.2026.01106},
pmid = {42649077},
issn = {1881-7823},
abstract = {Alzheimer's disease (AD) is a multifactorial neurodegenerative disorder characterized by progressive cognitive decline and complex pathological changes. Cholinergic dysfunction is an early, clinically pivotal feature of AD closely associated with multiple pathological processes, including amyloid-β (Aβ) pathology, neuroinflammatory responses, mitochondrial dysfunction, metal-ion dyshomeostasis, and apolipoprotein E (APOE) ε4-related vulnerability. While disrupted cholinergic signaling impairs memory formation and synaptic function, its bidirectional interaction with AD-related pathological cascades further accelerates disease progression. Traditional Chinese medicine (TCM) has been investigated as a potential multitarget approach with which to modulate cholinergic deficits and related pathological processes. Some TCM-derived compounds, standardized extracts, and formulas have been reported to regulate cholinergic enzymes, acetylcholine levels, cholinergic receptors, oxidative stress, mitochondrial function, neuroinflammatory responses, and Aβ- or tau-related pathology. This review summarizes the role of cholinergic failure in AD pathophysiology and evaluates the evidence surrounding TCM-based interventions, with emphasis on direct cholinergic evidence, indirect collateral mechanisms, and current translational limitations. Indeed, the purpose of these insights is to inform future development of multitarget therapeutic strategies for AD.},
}
RevDate: 2026-08-26
CmpDate: 2026-08-26
Next-generation multiplexed targeted proteomics quantifies post-translational modifications in disease and compound-protein interactions with high throughput.
Nature communications, 17(1):.
The GoDig platform enables sensitive, multiplexed targeted pathway proteomics without manual scheduling or synthetic standards. Here we present GoDig 2.0, which increases sample multiplexing to 35-fold, improves time efficiency and reduces scan delays for higher success rates, and allows flexible spectral and elution library generation from different mass spectrometry data types. GoDig 2.0 measures 2.4× more targets than GoDig 1.0, quantifying >99% of 800 peptides in a single run. We compile a library of 23,989 human phosphorylation sites from a phosphoproteomic dataset and use it to profile kinase signaling differences across cell lines. In human brain tissue, we establish a hyperphosphorylated tau assay including pTau127, revealing potential biomarkers for Alzheimer's disease. We also quantify diglycyl-lysine peptides to assess polyubiquitin branching. Finally, we build a library of 20,946 reactive cysteines and profile covalent compound-protein interactions spanning diverse pathways. GoDig 2.0 enables high-throughput analyses of site-specific protein modifications across many biological contexts.
Additional Links: PMID-42649221
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42649221,
year = {2026},
author = {Shuken, SR and Frere, GA and Beard, CR and McGann, CD and Canterbury, JD and Zuniga, NR and Gassaway, BM and Dawson, SL and Ooi, KH and Paulo, JA and McNerney, MW and Gygi, SP and Yu, Q},
title = {Next-generation multiplexed targeted proteomics quantifies post-translational modifications in disease and compound-protein interactions with high throughput.},
journal = {Nature communications},
volume = {17},
number = {1},
pages = {},
pmid = {42649221},
issn = {2041-1723},
support = {K99 AG088297/AG/NIA NIH HHS/United States ; GM67945/NH/NIH HHS/United States ; R01 GM132129/GM/NIGMS NIH HHS/United States ; K22 CA282268/CA/NCI NIH HHS/United States ; },
mesh = {Humans ; *Proteomics/methods ; *Protein Processing, Post-Translational ; Phosphorylation ; *Alzheimer Disease/metabolism ; tau Proteins/metabolism ; High-Throughput Screening Assays/methods ; Brain/metabolism ; Mass Spectrometry ; },
abstract = {The GoDig platform enables sensitive, multiplexed targeted pathway proteomics without manual scheduling or synthetic standards. Here we present GoDig 2.0, which increases sample multiplexing to 35-fold, improves time efficiency and reduces scan delays for higher success rates, and allows flexible spectral and elution library generation from different mass spectrometry data types. GoDig 2.0 measures 2.4× more targets than GoDig 1.0, quantifying >99% of 800 peptides in a single run. We compile a library of 23,989 human phosphorylation sites from a phosphoproteomic dataset and use it to profile kinase signaling differences across cell lines. In human brain tissue, we establish a hyperphosphorylated tau assay including pTau127, revealing potential biomarkers for Alzheimer's disease. We also quantify diglycyl-lysine peptides to assess polyubiquitin branching. Finally, we build a library of 20,946 reactive cysteines and profile covalent compound-protein interactions spanning diverse pathways. GoDig 2.0 enables high-throughput analyses of site-specific protein modifications across many biological contexts.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Humans
*Proteomics/methods
*Protein Processing, Post-Translational
Phosphorylation
*Alzheimer Disease/metabolism
tau Proteins/metabolism
High-Throughput Screening Assays/methods
Brain/metabolism
Mass Spectrometry
RevDate: 2026-08-26
Aberrant excitatory neuronal ERBB4 promotes Alzheimer's disease pathology.
Nature [Epub ahead of print].
Neuroinflammation and synapse loss are associated with cognitive decline in Alzheimer's disease (AD). Although microglial hyperphagocytic activity has been implicated in synapse loss[1-4], the mechanisms underlying these pathologies remain obscure. Here we demonstrate that, during AD progression in mice, astrocytes and microglia increase phagocytic elimination of excitatory synapses while reducing elimination of inhibitory synapses, suggesting that neuroinflammation alone may be dispensable for early AD synapse loss. Instead, single-nucleus RNA-sequencing analysis identified the emergence of early-responsive excitatory neurons (EREN), characterized by expression of ectopic Erb-B2 receptor tyrosine kinase 4 (Erbb4), as one of the earliest major alterations in AD mouse models. Selective Erbb4 deletion in AD excitatory neurons abrogated abnormal neuronal network activities and synapse loss, as well as reactive gliosis, amyloid plaque deposition and cognitive deficits. Conversely, Erbb4 overexpression in wild-type excitatory neurons recapitulated these core AD-like phenotypes without amyloid plaques. Mechanistically, these effects required mammalian target of rapamycin (mTOR) signalling downstream of ERBB4. Subsequent transcriptomic analyses showed that excitatory neuronal Erbb4 is both necessary and sufficient to induce EREN and reactive gliosis. Directed mediation analysis of human AD transcriptomic data further support a model in which excitatory neuronal ERBB4 contributes to a pathogenic cascade that links amyloid pathology to tau propagation and cognitive decline. These findings identify aberrant Erbb4 expression in excitatory neurons as an early driver of AD pathophysiology and a potential therapeutic target across neurodegenerative diseases.
Additional Links: PMID-42649291
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42649291,
year = {2026},
author = {Lee, SY and Park, E and Lee, HE and Kim, S and Yeo, Y and Park, J and Choi, YJ and Lee, K and Yoon, KJ and Park, S and Kim, E and Kim, JI and Chung, WS},
title = {Aberrant excitatory neuronal ERBB4 promotes Alzheimer's disease pathology.},
journal = {Nature},
volume = {},
number = {},
pages = {},
pmid = {42649291},
issn = {1476-4687},
abstract = {Neuroinflammation and synapse loss are associated with cognitive decline in Alzheimer's disease (AD). Although microglial hyperphagocytic activity has been implicated in synapse loss[1-4], the mechanisms underlying these pathologies remain obscure. Here we demonstrate that, during AD progression in mice, astrocytes and microglia increase phagocytic elimination of excitatory synapses while reducing elimination of inhibitory synapses, suggesting that neuroinflammation alone may be dispensable for early AD synapse loss. Instead, single-nucleus RNA-sequencing analysis identified the emergence of early-responsive excitatory neurons (EREN), characterized by expression of ectopic Erb-B2 receptor tyrosine kinase 4 (Erbb4), as one of the earliest major alterations in AD mouse models. Selective Erbb4 deletion in AD excitatory neurons abrogated abnormal neuronal network activities and synapse loss, as well as reactive gliosis, amyloid plaque deposition and cognitive deficits. Conversely, Erbb4 overexpression in wild-type excitatory neurons recapitulated these core AD-like phenotypes without amyloid plaques. Mechanistically, these effects required mammalian target of rapamycin (mTOR) signalling downstream of ERBB4. Subsequent transcriptomic analyses showed that excitatory neuronal Erbb4 is both necessary and sufficient to induce EREN and reactive gliosis. Directed mediation analysis of human AD transcriptomic data further support a model in which excitatory neuronal ERBB4 contributes to a pathogenic cascade that links amyloid pathology to tau propagation and cognitive decline. These findings identify aberrant Erbb4 expression in excitatory neurons as an early driver of AD pathophysiology and a potential therapeutic target across neurodegenerative diseases.},
}
RevDate: 2026-08-26
CmpDate: 2026-08-27
Diagnostic accuracy of plasma p-tau217 against amyloid PET: A meta-analysis of technical platform variability and ratio versus single marker comparisons.
Neurological sciences : official journal of the Italian Neurological Society and of the Italian Society of Clinical Neurophysiology, 47(9):.
OBJECTIVE: To systematically evaluate the diagnostic accuracy of plasma phosphorylated tau 217 (p-tau217) for detecting amyloid pathology in Alzheimer's disease (AD), compare performance across different technical platforms, and assess the incremental diagnostic value of the p-tau217/Aβ42 ratio relative to single p-tau217 measurements.
METHODS: In order to find diagnostic accuracy studies of plasma p-tau217 utilizing amyloid positron emission tomography (PET) as the reference standard, we conducted a systematic search of PubMed and EMBASE between January 2020 and February 2026. Random-effects models were used to compute pooled sensitivity, specificity, and diagnostic odds ratio (DOR). Technical platforms such as single-molecule array (Simoa), chemiluminescence immunoassay (CLIA), electrochemiluminescence immunoassay (ECLIA), and liquid chromatography-tandem mass spectrometry (LC-MS/MS) were used to stratify subgroup studies. Studies that reported both p-tau217 alone and p-tau217/Aβ42 ratios were subjected to paired meta-analyses.This systematic review was registered with PROSPERO (registration number: CRD420261371940).
RESULTS: Included were 25 studies with 18,073 participants. Platform-specific pooled diagnostic accuracy estimates were as follows: Simoa had sensitivity of 0.894 (95% CI 0.861-0.920) and specificity of 0.875 (0.845-0.900); CLIA had sensitivity of 0.886 (0.860-0.907) and specificity of 0.865 (0.826-0.896); ECLIA had the highest sensitivity of 0.933 (95% CI 0.918-0.946) but lower specificity (0.791, 95% CI 0.571-0.915); LC-MS/MS showed sensitivity of 0.827 (95% CI 0.725-0.897) and the highest specificity of 0.938 (95% CI 0.692-0.990).There was significant variation between the studies (I[2] = 63%-86%). The p-tau217/Aβ42 ratio approximately doubled the diagnostic odds ratio compared with p-tau217 alone (relative DOR 1.96, 95% CI 1.19-3.23), with mean sensitivity improvements of 3.6% and varying specificity changes (mean + 1.7%), according to paired meta-analyses of five studies.
CONCLUSIONS: For amyloid pathology, all technical platforms showed good diagnostic accuracy. While LC-MS/MS demonstrated the highest specificity, ECLIA demonstrated the maximum sensitivity. Its application in clinical practice is supported by the fact that the p-tau217/Aβ42 ratio performed much better than p-tau217 alone.
Additional Links: PMID-42649434
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42649434,
year = {2026},
author = {Yuan, C and Zhang, H and Chen, X and Zhu, L and Wang, Z and Wang, Y and Ge, S},
title = {Diagnostic accuracy of plasma p-tau217 against amyloid PET: A meta-analysis of technical platform variability and ratio versus single marker comparisons.},
journal = {Neurological sciences : official journal of the Italian Neurological Society and of the Italian Society of Clinical Neurophysiology},
volume = {47},
number = {9},
pages = {},
pmid = {42649434},
issn = {1590-3478},
mesh = {*tau Proteins/blood ; Humans ; *Alzheimer Disease/blood/diagnostic imaging/diagnosis ; *Positron-Emission Tomography/standards ; *Amyloid beta-Peptides/blood/metabolism ; Biomarkers/blood ; Sensitivity and Specificity ; Peptide Fragments/blood ; },
abstract = {OBJECTIVE: To systematically evaluate the diagnostic accuracy of plasma phosphorylated tau 217 (p-tau217) for detecting amyloid pathology in Alzheimer's disease (AD), compare performance across different technical platforms, and assess the incremental diagnostic value of the p-tau217/Aβ42 ratio relative to single p-tau217 measurements.
METHODS: In order to find diagnostic accuracy studies of plasma p-tau217 utilizing amyloid positron emission tomography (PET) as the reference standard, we conducted a systematic search of PubMed and EMBASE between January 2020 and February 2026. Random-effects models were used to compute pooled sensitivity, specificity, and diagnostic odds ratio (DOR). Technical platforms such as single-molecule array (Simoa), chemiluminescence immunoassay (CLIA), electrochemiluminescence immunoassay (ECLIA), and liquid chromatography-tandem mass spectrometry (LC-MS/MS) were used to stratify subgroup studies. Studies that reported both p-tau217 alone and p-tau217/Aβ42 ratios were subjected to paired meta-analyses.This systematic review was registered with PROSPERO (registration number: CRD420261371940).
RESULTS: Included were 25 studies with 18,073 participants. Platform-specific pooled diagnostic accuracy estimates were as follows: Simoa had sensitivity of 0.894 (95% CI 0.861-0.920) and specificity of 0.875 (0.845-0.900); CLIA had sensitivity of 0.886 (0.860-0.907) and specificity of 0.865 (0.826-0.896); ECLIA had the highest sensitivity of 0.933 (95% CI 0.918-0.946) but lower specificity (0.791, 95% CI 0.571-0.915); LC-MS/MS showed sensitivity of 0.827 (95% CI 0.725-0.897) and the highest specificity of 0.938 (95% CI 0.692-0.990).There was significant variation between the studies (I[2] = 63%-86%). The p-tau217/Aβ42 ratio approximately doubled the diagnostic odds ratio compared with p-tau217 alone (relative DOR 1.96, 95% CI 1.19-3.23), with mean sensitivity improvements of 3.6% and varying specificity changes (mean + 1.7%), according to paired meta-analyses of five studies.
CONCLUSIONS: For amyloid pathology, all technical platforms showed good diagnostic accuracy. While LC-MS/MS demonstrated the highest specificity, ECLIA demonstrated the maximum sensitivity. Its application in clinical practice is supported by the fact that the p-tau217/Aβ42 ratio performed much better than p-tau217 alone.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
*tau Proteins/blood
Humans
*Alzheimer Disease/blood/diagnostic imaging/diagnosis
*Positron-Emission Tomography/standards
*Amyloid beta-Peptides/blood/metabolism
Biomarkers/blood
Sensitivity and Specificity
Peptide Fragments/blood
RevDate: 2026-08-26
Heterozygous Variants in LRP1 Cause a Neurodevelopmental Disorder With Congenital Heart Defects.
American journal of medical genetics. Part A [Epub ahead of print].
LRP1 encodes the low-density lipoprotein (LDL) receptor-related protein 1 (LRP1), a transmembrane protein involved in endocytosis and activation of multiple signaling pathways. LRP1 variants have been implicated in the pathogenesis of congenital heart defects (CHD), Alzheimer's disease, and neurodevelopmental disorders (NDD). Biallelic LRP1 variants have also been reported in two siblings with CHD, hypotonia, dysmorphology, corneal clouding, and ascites. However, conclusive evidence supporting the role of LRP1 in human disease is still lacking. Individuals with heterozygous variants in LRP1 (NM_002332.3) were identified through genetic testing. GeneMatcher facilitated identification of participants and international collaboration. Comprehensive clinical and genotypic data were collected. Fifteen participants with heterozygous predicted loss-of-function (pLOF) or missense variants in LRP1 were identified. The most common phenotypes include NDD, CHD, musculoskeletal and gastrointestinal issues, and dysmorphic features. CHD was more common in participants with pLOF variants. Our findings suggest that LRP1 haploinsufficiency is associated with a syndromic NDD. Phenotypic differences in cardiac and neurologic involvement between participants with pLOF and missense variants suggest the possibility of alternate disease mechanisms.
Additional Links: PMID-42649465
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42649465,
year = {2026},
author = {Rippert, AL and Arnadottir, GA and Bedinger, L and Brunetti-Pierri, N and Cech, J and Chen, X and Chen, Y and Chick, E and Dyack, S and Franchi, M and Frey, T and Genevieve, D and Glass, I and Granadillo, J and Keener, KA and MacKay, SB and McDunnah, P and Misra, VK and Monaghan, KG and Mullegama, SV and Peduto, C and Peterman-Prather, L and Rauch, A and Somerville, C and Stefansson, K and Steindl, K and Sulem, P and Sulem, T and Trapane, P and Zeuli, R and Zinner, S and Izumi, K},
title = {Heterozygous Variants in LRP1 Cause a Neurodevelopmental Disorder With Congenital Heart Defects.},
journal = {American journal of medical genetics. Part A},
volume = {},
number = {},
pages = {},
doi = {10.1002/ajmg.a.70261},
pmid = {42649465},
issn = {1552-4833},
support = {K02NS140483/NH/NIH HHS/United States ; GSP15001//Fondazione Telethon/ ; U24HG006834//National Human Genome Research Institute (NHGRI)/ ; },
abstract = {LRP1 encodes the low-density lipoprotein (LDL) receptor-related protein 1 (LRP1), a transmembrane protein involved in endocytosis and activation of multiple signaling pathways. LRP1 variants have been implicated in the pathogenesis of congenital heart defects (CHD), Alzheimer's disease, and neurodevelopmental disorders (NDD). Biallelic LRP1 variants have also been reported in two siblings with CHD, hypotonia, dysmorphology, corneal clouding, and ascites. However, conclusive evidence supporting the role of LRP1 in human disease is still lacking. Individuals with heterozygous variants in LRP1 (NM_002332.3) were identified through genetic testing. GeneMatcher facilitated identification of participants and international collaboration. Comprehensive clinical and genotypic data were collected. Fifteen participants with heterozygous predicted loss-of-function (pLOF) or missense variants in LRP1 were identified. The most common phenotypes include NDD, CHD, musculoskeletal and gastrointestinal issues, and dysmorphic features. CHD was more common in participants with pLOF variants. Our findings suggest that LRP1 haploinsufficiency is associated with a syndromic NDD. Phenotypic differences in cardiac and neurologic involvement between participants with pLOF and missense variants suggest the possibility of alternate disease mechanisms.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Animal Models of Lymphaticovenous Anastomosis: A Systematic Review of Current Evidence and Future Directions in Translational Research.
Microsurgery, 46(6):e70283.
BACKGROUND: Lymphovenous bypass (LVB) or lymphaticovenous anastomosis (LVA) is increasingly applied, including experimental use for Alzheimer's disease via cervical lymphatic pathways. However, literature on long-term patency and failure mechanisms is scarce, and no gold standard exists for evaluating durability. Robust, reproducible LVA models are essential to advance translational research. This review maps current animal models and proposes strategies for improving reliability and mechanistic insight.
METHODS: A PRISMA-guided search of PubMed, Scopus, and Google Scholar identified original animal studies reporting intra- or postoperative patency using functional or structural methods. Extracted data included species, anastomosis type, assessment tools, follow-up intervals, patency rates, and histology.
RESULTS: Of 107 records screened, 11 met criteria: rats (n = 7), rabbits (n = 1), piglets (n = 1), and canines (n = 2). Techniques were mainly end-to-end (n = 9) and end-to-side (n = 2), targeting femoral, iliolumbar, popliteal, mesenteric, cervical, and thoracic-duct outflows. Intraoperative patency was uniformly high (≥ 90%). Postoperative patency was reported in six studies, ranging from 80% to 100% at ≤ 7 days (ICG lymphography) to 67% at 1 month (canines). Histology (three studies) distinguished patent sites (smooth endothelium) from failed ones (irregular endothelium, thrombus, fibrosis). Follow-up was categorized as short-term (0-7 days), mid-term (2-4 weeks), and long-term (≥ 1 month), but standardized long-term outcomes were absent.
CONCLUSIONS: Future models should integrate noninvasive imaging, serial long-term follow-up, and detailed histologic and molecular analysis to clarify success and failure mechanisms. Standardized methodologies will enhance translational relevance, refine surgical techniques, and inform therapies to improve LVA durability.
Additional Links: PMID-42649608
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42649608,
year = {2026},
author = {Isaac, JI and Singh, PG and Lee, CU and Paget, JT and Fahradyan, V},
title = {Animal Models of Lymphaticovenous Anastomosis: A Systematic Review of Current Evidence and Future Directions in Translational Research.},
journal = {Microsurgery},
volume = {46},
number = {6},
pages = {e70283},
doi = {10.1002/micr.70283},
pmid = {42649608},
issn = {1098-2752},
mesh = {Animals ; Anastomosis, Surgical/methods ; *Translational Research, Biomedical ; *Lymphatic Vessels/surgery ; *Models, Animal ; Vascular Patency ; Dogs ; Rats ; Recipient Vessels ; Rabbits ; },
abstract = {BACKGROUND: Lymphovenous bypass (LVB) or lymphaticovenous anastomosis (LVA) is increasingly applied, including experimental use for Alzheimer's disease via cervical lymphatic pathways. However, literature on long-term patency and failure mechanisms is scarce, and no gold standard exists for evaluating durability. Robust, reproducible LVA models are essential to advance translational research. This review maps current animal models and proposes strategies for improving reliability and mechanistic insight.
METHODS: A PRISMA-guided search of PubMed, Scopus, and Google Scholar identified original animal studies reporting intra- or postoperative patency using functional or structural methods. Extracted data included species, anastomosis type, assessment tools, follow-up intervals, patency rates, and histology.
RESULTS: Of 107 records screened, 11 met criteria: rats (n = 7), rabbits (n = 1), piglets (n = 1), and canines (n = 2). Techniques were mainly end-to-end (n = 9) and end-to-side (n = 2), targeting femoral, iliolumbar, popliteal, mesenteric, cervical, and thoracic-duct outflows. Intraoperative patency was uniformly high (≥ 90%). Postoperative patency was reported in six studies, ranging from 80% to 100% at ≤ 7 days (ICG lymphography) to 67% at 1 month (canines). Histology (three studies) distinguished patent sites (smooth endothelium) from failed ones (irregular endothelium, thrombus, fibrosis). Follow-up was categorized as short-term (0-7 days), mid-term (2-4 weeks), and long-term (≥ 1 month), but standardized long-term outcomes were absent.
CONCLUSIONS: Future models should integrate noninvasive imaging, serial long-term follow-up, and detailed histologic and molecular analysis to clarify success and failure mechanisms. Standardized methodologies will enhance translational relevance, refine surgical techniques, and inform therapies to improve LVA durability.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Animals
Anastomosis, Surgical/methods
*Translational Research, Biomedical
*Lymphatic Vessels/surgery
*Models, Animal
Vascular Patency
Dogs
Rats
Recipient Vessels
Rabbits
RevDate: 2026-08-27
CmpDate: 2026-08-27
Knowledge Graph and Large Language Model-Based Analysis of fMRI Brain Functional Neuroimaging Research.
Bioengineering (Basel, Switzerland), 13(8): pii:bioengineering13080945.
The rapid growth of multimodal neuroimaging research has produced fragmented literature that limits systematic characterization of cross-modal relationships and disease-specific knowledge structures. To address this, we constructed a multimodal neuroimaging knowledge graph from 1838 peer-reviewed studies (2016-2026) spanning fMRI, EEG, fNIRS, and PET, using an LLM-based extraction and retrieval-augmented semantic merging pipeline. The resulting graph comprised 4190 nodes and 7007 edges, exhibiting a scale-free topology with a dominant connected component covering 76.6% of nodes. Alzheimer's disease, the hippocampus, and fMRI/PET emerged as the most central hubs linking disease, anatomical, and methodological dimensions. Louvain community detection identified 25 functional modules, with seven major communities-centered on Alzheimer's biomarker integration, molecular/fluid imaging, and psychiatric functional connectivity-forming the field's core structure. Cross-modal analysis revealed the strongest coupling between fMRI and PET, indicating high methodological convergence. At the disease level, Alzheimer's disease displayed a mature, hierarchically organized biomarker system, whereas major depressive disorder and chronic pain showed diffuse, less consolidated knowledge structures. These results reveal pronounced disparities across neuroimaging research domains and demonstrate that LLM-augmented knowledge graphs can systematically uncover latent structural organization relevant to multimodal integration and biomarker discovery.
Additional Links: PMID-42649834
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42649834,
year = {2026},
author = {Liu, Z and Ouyang, H and Liu, X and Mao, H and Dai, W and Kang, Y},
title = {Knowledge Graph and Large Language Model-Based Analysis of fMRI Brain Functional Neuroimaging Research.},
journal = {Bioengineering (Basel, Switzerland)},
volume = {13},
number = {8},
pages = {},
doi = {10.3390/bioengineering13080945},
pmid = {42649834},
issn = {2306-5354},
support = {19JZD010//Ministry of Education of the People's Republic of China/ ; },
abstract = {The rapid growth of multimodal neuroimaging research has produced fragmented literature that limits systematic characterization of cross-modal relationships and disease-specific knowledge structures. To address this, we constructed a multimodal neuroimaging knowledge graph from 1838 peer-reviewed studies (2016-2026) spanning fMRI, EEG, fNIRS, and PET, using an LLM-based extraction and retrieval-augmented semantic merging pipeline. The resulting graph comprised 4190 nodes and 7007 edges, exhibiting a scale-free topology with a dominant connected component covering 76.6% of nodes. Alzheimer's disease, the hippocampus, and fMRI/PET emerged as the most central hubs linking disease, anatomical, and methodological dimensions. Louvain community detection identified 25 functional modules, with seven major communities-centered on Alzheimer's biomarker integration, molecular/fluid imaging, and psychiatric functional connectivity-forming the field's core structure. Cross-modal analysis revealed the strongest coupling between fMRI and PET, indicating high methodological convergence. At the disease level, Alzheimer's disease displayed a mature, hierarchically organized biomarker system, whereas major depressive disorder and chronic pain showed diffuse, less consolidated knowledge structures. These results reveal pronounced disparities across neuroimaging research domains and demonstrate that LLM-augmented knowledge graphs can systematically uncover latent structural organization relevant to multimodal integration and biomarker discovery.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Oral Microbiota, the Oral-Brain Axis, and Neurodegeneration: Mechanisms and Dietary Modulation.
Antioxidants (Basel, Switzerland), 15(8): pii:antiox15080925.
The oral microbiota represents a complex and dynamic microbial ecosystem that plays a critical role in preserving both oral and systemic homeostasis. Emerging evidence suggests that alterations in oral microbial milieu (dysbiosis) may contribute to the pathogenesis of neurodegenerative disorders, especially Alzheimer's disease (AD), through the oral-brain axis. This review synthesizes current evidence on the pathways linking oral microbiota to cognitive decline, integrating microbial, immunological, and vascular perspectives. Oral pathogens may access the central nervous system via hematogenous dissemination or neural routes, including the trigeminal nerve, while simultaneously promoting systemic inflammation, immune activation, and blood-brain barrier disruption. These processes converge on key neurodegenerative mechanisms, including chronic neuroinflammation, amyloid-β accumulation, and tau pathology. In parallel, alterations in oral microbial composition have been linked to disease severity, supporting a potential role of dysbiosis in both initiation and progression of cognitive impairment. Diet emerges as a critical modifiable determinant of oral microbial ecology. Diets rich in refined sugars may promote dysbiosis and inflammatory signaling, whereas (poly)phenols, probiotics, and prebiotics may support microbial eubiosis and exert neuroprotective effects through modulation of host-microbe interactions. Although current evidence remains largely observational and mechanistic, the diet-oral microbiota-brain axis represents a promising target for preventive and therapeutic strategies aimed at mitigating cognitive decline and promoting healthy aging. Future longitudinal and interventional studies are required to establish causality and translate these insights into clinical practice.
Additional Links: PMID-42650190
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42650190,
year = {2026},
author = {Godos, J and Caruso, G and Mainas, G and Micek, A and Di Mauro, A and Buccarello, L and Martínez López, NM and Frias-Toral, E and Giampieri, F and Lehoczki, A and Isola, G and Galvano, F and Ungvari, Z and Quiles, JL and Battino, M and Grosso, G},
title = {Oral Microbiota, the Oral-Brain Axis, and Neurodegeneration: Mechanisms and Dietary Modulation.},
journal = {Antioxidants (Basel, Switzerland)},
volume = {15},
number = {8},
pages = {},
doi = {10.3390/antiox15080925},
pmid = {42650190},
issn = {2076-3921},
support = {NA//Italian Ministry of Health/ ; },
abstract = {The oral microbiota represents a complex and dynamic microbial ecosystem that plays a critical role in preserving both oral and systemic homeostasis. Emerging evidence suggests that alterations in oral microbial milieu (dysbiosis) may contribute to the pathogenesis of neurodegenerative disorders, especially Alzheimer's disease (AD), through the oral-brain axis. This review synthesizes current evidence on the pathways linking oral microbiota to cognitive decline, integrating microbial, immunological, and vascular perspectives. Oral pathogens may access the central nervous system via hematogenous dissemination or neural routes, including the trigeminal nerve, while simultaneously promoting systemic inflammation, immune activation, and blood-brain barrier disruption. These processes converge on key neurodegenerative mechanisms, including chronic neuroinflammation, amyloid-β accumulation, and tau pathology. In parallel, alterations in oral microbial composition have been linked to disease severity, supporting a potential role of dysbiosis in both initiation and progression of cognitive impairment. Diet emerges as a critical modifiable determinant of oral microbial ecology. Diets rich in refined sugars may promote dysbiosis and inflammatory signaling, whereas (poly)phenols, probiotics, and prebiotics may support microbial eubiosis and exert neuroprotective effects through modulation of host-microbe interactions. Although current evidence remains largely observational and mechanistic, the diet-oral microbiota-brain axis represents a promising target for preventive and therapeutic strategies aimed at mitigating cognitive decline and promoting healthy aging. Future longitudinal and interventional studies are required to establish causality and translate these insights into clinical practice.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
The Eye as a Window to Neurodegeneration: Oxidative Stress, Optic Nerve Vulnerability, and Retinal Biomarkers-A Scoping Review.
Antioxidants (Basel, Switzerland), 15(8): pii:antiox15080948.
Neurodegenerative diseases represent a major and growing global health burden characterized by progressive neuronal dysfunction, axonal degeneration, and irreversible neural tissue loss. Increasing evidence identifies oxidative stress as one of several interacting pathogenic mechanisms in Alzheimer's disease, Parkinson's disease, amyotrophic lateral sclerosis, and several optic neuropathies. Interest has increasingly focused on the brain-retina axis, as the retina and optic nerve share structural, metabolic, and molecular features with the central nervous system and may provide accessible insights into neurodegeneration. This scoping review mapped current evidence on oxidative stress in neurodegeneration, emphasizing cranial nerve involvement, optic nerve vulnerability, retinal ganglion cell degeneration, visual dysfunction, oxidative biomarkers, and emerging therapeutic strategies. The review followed established methodological frameworks and PRISMA-ScR recommendations; no formal risk-of-bias appraisal was undertaken, consistent with scoping-review methodology. The literature shows that oxidative stress interacts with mitochondrial dysfunction, neuroinflammation, impaired mitophagy, ferroptosis, and altered bioenergetics, contributing to neuronal injury in cerebral and retinal disorders. Retinal ganglion cells appear particularly vulnerable because of their high metabolic demands and reliance on oxidative phosphorylation. Glaucoma and other optic neuropathies share molecular signatures with central neurodegenerative diseases. Retinal imaging and oxidative biomarkers show promise for diagnosis, monitoring, and stratification. The evidence base is nonetheless dominated by preclinical work; biomarker performance is inconsistent across matrices and assay platforms and most antioxidant clinical trials have been negative. Oxidative stress is therefore best regarded as one interacting node of a broader pathogenic network rather than a universal or predominant driver and the brain-retina continuum as a mechanistically plausible but not yet clinically validated framework for biomarker-guided neuroprotection.
Additional Links: PMID-42650212
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42650212,
year = {2026},
author = {Varrassi, G and Tran, YV and Farì, G and Narvaez Encinas, M and Corriero, A and Puntillo, F and Pham, PV and Leoni, MLG},
title = {The Eye as a Window to Neurodegeneration: Oxidative Stress, Optic Nerve Vulnerability, and Retinal Biomarkers-A Scoping Review.},
journal = {Antioxidants (Basel, Switzerland)},
volume = {15},
number = {8},
pages = {},
doi = {10.3390/antiox15080948},
pmid = {42650212},
issn = {2076-3921},
support = {//Tam Anh General Hospital, Ha Noi/ ; },
abstract = {Neurodegenerative diseases represent a major and growing global health burden characterized by progressive neuronal dysfunction, axonal degeneration, and irreversible neural tissue loss. Increasing evidence identifies oxidative stress as one of several interacting pathogenic mechanisms in Alzheimer's disease, Parkinson's disease, amyotrophic lateral sclerosis, and several optic neuropathies. Interest has increasingly focused on the brain-retina axis, as the retina and optic nerve share structural, metabolic, and molecular features with the central nervous system and may provide accessible insights into neurodegeneration. This scoping review mapped current evidence on oxidative stress in neurodegeneration, emphasizing cranial nerve involvement, optic nerve vulnerability, retinal ganglion cell degeneration, visual dysfunction, oxidative biomarkers, and emerging therapeutic strategies. The review followed established methodological frameworks and PRISMA-ScR recommendations; no formal risk-of-bias appraisal was undertaken, consistent with scoping-review methodology. The literature shows that oxidative stress interacts with mitochondrial dysfunction, neuroinflammation, impaired mitophagy, ferroptosis, and altered bioenergetics, contributing to neuronal injury in cerebral and retinal disorders. Retinal ganglion cells appear particularly vulnerable because of their high metabolic demands and reliance on oxidative phosphorylation. Glaucoma and other optic neuropathies share molecular signatures with central neurodegenerative diseases. Retinal imaging and oxidative biomarkers show promise for diagnosis, monitoring, and stratification. The evidence base is nonetheless dominated by preclinical work; biomarker performance is inconsistent across matrices and assay platforms and most antioxidant clinical trials have been negative. Oxidative stress is therefore best regarded as one interacting node of a broader pathogenic network rather than a universal or predominant driver and the brain-retina continuum as a mechanistically plausible but not yet clinically validated framework for biomarker-guided neuroprotection.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Functional Foods and Micro- and Nanoplastics: Advances in Precision Nutritional Medicine for Oral-Gut-Brain Axis Health.
Antioxidants (Basel, Switzerland), 15(8): pii:antiox15080951.
Microplastics and nanoplastics (MNPs) are emerging environmental pollutants due to their persistence and bodily accumulation. Recently, functional foods have received much attention for their ability to reverse or block MNP damage for therapeutic purposes and the potential risk of developing oral-gut-brain axis disorders. Among these, artichoke, spirulina algae, Opuntia ficus-indica, pterostilbene, hydroxycinnamic acids, and quinic acid are rich sources of polyphenols. These bioactive ingredients, especially when combined with probiotics and prebiotics, exhibit significant antioxidant and anti-inflammatory potential by activating nuclear factor erythroid 2-related factor 2 (Nrf2) signaling and cellular resilience enzymes. Nrf2 activation enhances cellular resilience response, and it may preserve oral epithelial barrier (OEB), intestinal epithelial barrier (IEB), and blood-brain barrier (BBB) integrity, while modulating oral pathogens, gut microbial dysbiosis, and neuroinflammatory processes. However, most of the available evidence supporting these mechanisms derives from in vitro and animal studies, whereas clinical evidence in humans remains limited. Perturbations of Nrf2 due to circulating MNPs may exacerbate selective susceptibility to oral, gut, and nervous system disorders, including Alzheimer's disease (AD). Although these findings are biologically plausible, the causal relationships and their clinical relevance have not yet been fully established. This review discusses the role of functional foods in maintaining oral-gut-brain health through Nrf2-mediated mechanisms that may mitigate MNP-induced inflammation and reactive oxygen species (ROS). The review also examines emerging concepts in precision nutritional medicine, including individual variability in dietary responses, microbiome-related factors, and future personalized strategies for populations exposed to MNPs. Finally, current knowledge gaps, the scarcity of human studies, and the challenges in translating preclinical findings into clinical practice are highlighted, emphasizing the need for further translational and clinical research.
Additional Links: PMID-42650215
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42650215,
year = {2026},
author = {Concetta, SM and Cinzia, L and Giulia, Z and Caterina, L and Gaetano, I and Nicolò, M and Angela, TS},
title = {Functional Foods and Micro- and Nanoplastics: Advances in Precision Nutritional Medicine for Oral-Gut-Brain Axis Health.},
journal = {Antioxidants (Basel, Switzerland)},
volume = {15},
number = {8},
pages = {},
doi = {10.3390/antiox15080951},
pmid = {42650215},
issn = {2076-3921},
abstract = {Microplastics and nanoplastics (MNPs) are emerging environmental pollutants due to their persistence and bodily accumulation. Recently, functional foods have received much attention for their ability to reverse or block MNP damage for therapeutic purposes and the potential risk of developing oral-gut-brain axis disorders. Among these, artichoke, spirulina algae, Opuntia ficus-indica, pterostilbene, hydroxycinnamic acids, and quinic acid are rich sources of polyphenols. These bioactive ingredients, especially when combined with probiotics and prebiotics, exhibit significant antioxidant and anti-inflammatory potential by activating nuclear factor erythroid 2-related factor 2 (Nrf2) signaling and cellular resilience enzymes. Nrf2 activation enhances cellular resilience response, and it may preserve oral epithelial barrier (OEB), intestinal epithelial barrier (IEB), and blood-brain barrier (BBB) integrity, while modulating oral pathogens, gut microbial dysbiosis, and neuroinflammatory processes. However, most of the available evidence supporting these mechanisms derives from in vitro and animal studies, whereas clinical evidence in humans remains limited. Perturbations of Nrf2 due to circulating MNPs may exacerbate selective susceptibility to oral, gut, and nervous system disorders, including Alzheimer's disease (AD). Although these findings are biologically plausible, the causal relationships and their clinical relevance have not yet been fully established. This review discusses the role of functional foods in maintaining oral-gut-brain health through Nrf2-mediated mechanisms that may mitigate MNP-induced inflammation and reactive oxygen species (ROS). The review also examines emerging concepts in precision nutritional medicine, including individual variability in dietary responses, microbiome-related factors, and future personalized strategies for populations exposed to MNPs. Finally, current knowledge gaps, the scarcity of human studies, and the challenges in translating preclinical findings into clinical practice are highlighted, emphasizing the need for further translational and clinical research.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Reduced Serum PON1 Lactonase Activity Is Associated with Mild Cognitive Impairment and Mixed Dementia.
Antioxidants (Basel, Switzerland), 15(8): pii:antiox15081011.
High-density lipoprotein (HDL)-associated paraoxonase-1 (PON1) contributes substantially to the antioxidant and anti-inflammatory functions of HDL. Impairment of these protective properties has been associated with Alzheimer's disease (AD) and other forms of dementia, particularly those involving neurovascular dysregulation. In the present study, we investigated for the first time the potential involvement of the putative physiological lactonase activity of PON1 in serum samples from a large cohort of older adults (n = 691), including cognitively healthy controls and patients with mild cognitive impairment (MCI), AD, vascular dementia (VAD), mixed AD/VAD (MIXED dementia), and other forms of dementia. A difference was observed between controls and MCI patients (-34%, p < 0.001). The next largest differences were observed in the VAD and MIXED dementia groups, both showing a decrease of approximately 25% compared with controls (p < 0.05 and p < 0.001, respectively), and in AD patients (-14%, p < 0.05). After adjustment for confounding factors, only MCI and MIXED dementia remained significantly different from controls. These findings suggest that reduced serum PON1 lactonase activity is already detectable at the MCI stage and is particularly evident in conditions combining neurodegenerative and vascular pathology. Longitudinal studies are required to determine whether lower PON1 lactonase activity precedes, accompanies, or follows cognitive decline.
Additional Links: PMID-42650275
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42650275,
year = {2026},
author = {Riccetti, R and Trentini, A and Mola, G and Brombo, G and di Paola, DF and Castellazzi, M and Candeloro, R and Manfrinato, MC and Zuliani, G and Cervellati, C},
title = {Reduced Serum PON1 Lactonase Activity Is Associated with Mild Cognitive Impairment and Mixed Dementia.},
journal = {Antioxidants (Basel, Switzerland)},
volume = {15},
number = {8},
pages = {},
doi = {10.3390/antiox15081011},
pmid = {42650275},
issn = {2076-3921},
abstract = {High-density lipoprotein (HDL)-associated paraoxonase-1 (PON1) contributes substantially to the antioxidant and anti-inflammatory functions of HDL. Impairment of these protective properties has been associated with Alzheimer's disease (AD) and other forms of dementia, particularly those involving neurovascular dysregulation. In the present study, we investigated for the first time the potential involvement of the putative physiological lactonase activity of PON1 in serum samples from a large cohort of older adults (n = 691), including cognitively healthy controls and patients with mild cognitive impairment (MCI), AD, vascular dementia (VAD), mixed AD/VAD (MIXED dementia), and other forms of dementia. A difference was observed between controls and MCI patients (-34%, p < 0.001). The next largest differences were observed in the VAD and MIXED dementia groups, both showing a decrease of approximately 25% compared with controls (p < 0.05 and p < 0.001, respectively), and in AD patients (-14%, p < 0.05). After adjustment for confounding factors, only MCI and MIXED dementia remained significantly different from controls. These findings suggest that reduced serum PON1 lactonase activity is already detectable at the MCI stage and is particularly evident in conditions combining neurodegenerative and vascular pathology. Longitudinal studies are required to determine whether lower PON1 lactonase activity precedes, accompanies, or follows cognitive decline.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Development of a Novel AAV-Mediated microRNA Gene Therapy for Spatial Suppression of BACE1 to Improve Cognitive Function in Alzheimer's Disease Model Mice.
Biomolecules, 16(8): pii:biom16081075.
The beta-site amyloid precursor protein (APP)-cleaving enzyme 1 (BACE1) is a promising and rational target for Alzheimer's disease (AD), but current clinical trials have been disappointing. Consequently, utilizing the intrinsic regulatory mechanisms of BACE1 during AD pathogenesis might provide valuable insights into the treatment of this devastating disease. In this study, we proposed a combination of AAV delivery and microRNA therapeutics targeting AD at its root by sustained and spatial inhibition of BACE1 with a single therapeutic injection. We demonstrate that upregulation of BACE1 is correlated with downregulation of miR-143-3p in the hippocampus of individuals with AD, and miR-143-3p can directly target BACE1 to inhibit Aβ generation. In the brains of 5×FAD model mice, BACE1 levels are found to be elevated with age in the cornu ammonis 1 (CA1) subfield of the hippocampus. AAV-mediated miR-143-3p restoration in the hippocampal CA1 subfield of AD mice can improve cognitive performance, attenuate BACE1 expression, reduce Aβ levels, induce microglia polarization toward the anti-inflammatory phenotype, modulate neural-related genes including Gal3, and promote synaptic functions. Collectively, the AAV-mediated microRNA gene therapy approach developed for spatial suppression of BACE1 can effectively enhance cognitive performance in AD model mice, offering an attractive therapeutic option for AD treatment with long-lasting efficacy.
Additional Links: PMID-42650743
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42650743,
year = {2026},
author = {Zhou, Y and Diao, Y and Yan, Z and Shui, X and Huang, Z and Sun, Y and Wang, S and Xia, Y and Lee, TH and Wang, L},
title = {Development of a Novel AAV-Mediated microRNA Gene Therapy for Spatial Suppression of BACE1 to Improve Cognitive Function in Alzheimer's Disease Model Mice.},
journal = {Biomolecules},
volume = {16},
number = {8},
pages = {},
doi = {10.3390/biom16081075},
pmid = {42650743},
issn = {2218-273X},
support = {82401642, 82404101, 82271449 and 82571556//National Natural Science Foundation of China/ ; 2022J01666//Fujian Provincial Department of Science and Technology/ ; 2025Y9117, 2024Y9094 and 2023Y9008//Fujian Provincial Department of Science and Technology/ ; },
mesh = {Animals ; *MicroRNAs/genetics/metabolism ; *Alzheimer Disease/therapy/genetics/metabolism ; *Amyloid Precursor Protein Secretases/genetics/metabolism/antagonists & inhibitors ; *Aspartic Acid Endopeptidases/genetics/metabolism/antagonists & inhibitors ; *Dependovirus/genetics ; *Genetic Therapy/methods ; Mice ; Disease Models, Animal ; Humans ; *Cognition ; Gene Therapy Agents ; Hippocampus/metabolism ; Male ; },
abstract = {The beta-site amyloid precursor protein (APP)-cleaving enzyme 1 (BACE1) is a promising and rational target for Alzheimer's disease (AD), but current clinical trials have been disappointing. Consequently, utilizing the intrinsic regulatory mechanisms of BACE1 during AD pathogenesis might provide valuable insights into the treatment of this devastating disease. In this study, we proposed a combination of AAV delivery and microRNA therapeutics targeting AD at its root by sustained and spatial inhibition of BACE1 with a single therapeutic injection. We demonstrate that upregulation of BACE1 is correlated with downregulation of miR-143-3p in the hippocampus of individuals with AD, and miR-143-3p can directly target BACE1 to inhibit Aβ generation. In the brains of 5×FAD model mice, BACE1 levels are found to be elevated with age in the cornu ammonis 1 (CA1) subfield of the hippocampus. AAV-mediated miR-143-3p restoration in the hippocampal CA1 subfield of AD mice can improve cognitive performance, attenuate BACE1 expression, reduce Aβ levels, induce microglia polarization toward the anti-inflammatory phenotype, modulate neural-related genes including Gal3, and promote synaptic functions. Collectively, the AAV-mediated microRNA gene therapy approach developed for spatial suppression of BACE1 can effectively enhance cognitive performance in AD model mice, offering an attractive therapeutic option for AD treatment with long-lasting efficacy.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
Animals
*MicroRNAs/genetics/metabolism
*Alzheimer Disease/therapy/genetics/metabolism
*Amyloid Precursor Protein Secretases/genetics/metabolism/antagonists & inhibitors
*Aspartic Acid Endopeptidases/genetics/metabolism/antagonists & inhibitors
*Dependovirus/genetics
*Genetic Therapy/methods
Mice
Disease Models, Animal
Humans
*Cognition
Gene Therapy Agents
Hippocampus/metabolism
Male
RevDate: 2026-08-27
CmpDate: 2026-08-27
Neuroprotective Potential of Sesamum indicum in a Multifactorial In Vitro Neuron-Astrocyte System Exposed to Chronic Stress Mediators.
Biomolecules, 16(8): pii:biom16081084.
Chronic stress is increasingly recognized as a major contributor to Alzheimer's disease (AD)-related neurodegeneration through mechanisms involving neuroinflammation, oxidative stress, mitochondrial dysfunction, excitotoxicity, and amyloidogenic processing. Here, we investigated the neuroprotective effects of Sesamum indicum whole paste extract (SIPE) using 2D neuron-astrocyte-like cell (ALC) co-cultures and 3D neuron-ALC spheroids exposed to a TNF-α/glutamate/cortisol (TGC) chronic stress paradigm. TGC exposure induced mitochondrial dysfunction, mitochondrial superoxide generation, astrocytic reactivity, NF-κB activation, reduced pro-BDNF expression, intracellular and extracellular Aβ42 accumulation, Tau phosphorylation, and caspase-3 activation, reproducing key hallmarks associated with chronic stress-related neurodegeneration. Among sesame-derived preparations evaluated, SIPE exhibited the strongest neuroprotective effects, preserving mitochondrial membrane potential, reducing oxidative stress, preventing neuronal loss, attenuating gliosis, and suppressing inflammatory, amyloidogenic, and apoptotic signaling. These effects were consistently reproduced in 3D spheroids. Phytochemical analysis revealed that SIPE contained the highest enrichment of sesamin, representing approximately 25% of the detected relative composition. Molecular docking analyses demonstrated favorable sesamin binding affinity toward TNF-α, DJ-1, Aβ42, and caspase-3. Collectively, these findings identify SIPE as a promising multitarget neuroprotective strategy against chronic stress-associated AD-related pathology.
Additional Links: PMID-42650752
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42650752,
year = {2026},
author = {Soto-Mercado, V and Arias-Loaiza, MP and Mendivil-Perez, M},
title = {Neuroprotective Potential of Sesamum indicum in a Multifactorial In Vitro Neuron-Astrocyte System Exposed to Chronic Stress Mediators.},
journal = {Biomolecules},
volume = {16},
number = {8},
pages = {},
doi = {10.3390/biom16081084},
pmid = {42650752},
issn = {2218-273X},
support = {112721-201-2024 and 2024-77129//Fondo Nacional de Financiamiento para la Ciencia, la Tecnología y la Innovación Francisco José de Caldas, Minciencias; Comité para el Desarrollo de la Investigación (CODI); Programa Jóvenes Investigadores UdeA-2025/ ; },
mesh = {*Neuroprotective Agents/pharmacology/chemistry ; *Neurons/drug effects/metabolism/cytology ; *Sesamum/chemistry ; *Astrocytes/drug effects/metabolism/cytology ; Animals ; Oxidative Stress/drug effects ; *Plant Extracts/pharmacology/chemistry ; Tumor Necrosis Factor-alpha/metabolism ; Amyloid beta-Peptides/metabolism ; Dioxoles/pharmacology/chemistry ; Molecular Docking Simulation ; Membrane Potential, Mitochondrial/drug effects ; Lignans/pharmacology/chemistry ; Humans ; Mitochondria/drug effects/metabolism ; Coculture Techniques ; },
abstract = {Chronic stress is increasingly recognized as a major contributor to Alzheimer's disease (AD)-related neurodegeneration through mechanisms involving neuroinflammation, oxidative stress, mitochondrial dysfunction, excitotoxicity, and amyloidogenic processing. Here, we investigated the neuroprotective effects of Sesamum indicum whole paste extract (SIPE) using 2D neuron-astrocyte-like cell (ALC) co-cultures and 3D neuron-ALC spheroids exposed to a TNF-α/glutamate/cortisol (TGC) chronic stress paradigm. TGC exposure induced mitochondrial dysfunction, mitochondrial superoxide generation, astrocytic reactivity, NF-κB activation, reduced pro-BDNF expression, intracellular and extracellular Aβ42 accumulation, Tau phosphorylation, and caspase-3 activation, reproducing key hallmarks associated with chronic stress-related neurodegeneration. Among sesame-derived preparations evaluated, SIPE exhibited the strongest neuroprotective effects, preserving mitochondrial membrane potential, reducing oxidative stress, preventing neuronal loss, attenuating gliosis, and suppressing inflammatory, amyloidogenic, and apoptotic signaling. These effects were consistently reproduced in 3D spheroids. Phytochemical analysis revealed that SIPE contained the highest enrichment of sesamin, representing approximately 25% of the detected relative composition. Molecular docking analyses demonstrated favorable sesamin binding affinity toward TNF-α, DJ-1, Aβ42, and caspase-3. Collectively, these findings identify SIPE as a promising multitarget neuroprotective strategy against chronic stress-associated AD-related pathology.},
}
MeSH Terms:
show MeSH Terms
hide MeSH Terms
*Neuroprotective Agents/pharmacology/chemistry
*Neurons/drug effects/metabolism/cytology
*Sesamum/chemistry
*Astrocytes/drug effects/metabolism/cytology
Animals
Oxidative Stress/drug effects
*Plant Extracts/pharmacology/chemistry
Tumor Necrosis Factor-alpha/metabolism
Amyloid beta-Peptides/metabolism
Dioxoles/pharmacology/chemistry
Molecular Docking Simulation
Membrane Potential, Mitochondrial/drug effects
Lignans/pharmacology/chemistry
Humans
Mitochondria/drug effects/metabolism
Coculture Techniques
RevDate: 2026-08-27
CmpDate: 2026-08-27
Diagnostic Role of Multimodal Imaging in Optic Disc Diseases.
Diagnostics (Basel, Switzerland), 16(16): pii:diagnostics16162591.
The aim of this narrative review was to provide a disease-oriented diagnostic framework for selecting and integrating multimodal imaging techniques according to the suspected optic disc disorder. A non-systematic PubMed search was performed to identify relevant literature on optic disc diseases and related imaging appearances. Searches included a combination of terms related to disease features and imaging modalities. The recent introduction of non-invasive imaging devices, such as optical coherence tomography (OCT) and OCT angiography (OCTA), has allowed a remarkable step forward in the knowledge of the optic disc. OCT has revolutionized the diagnosis and monitoring of glaucomatous eyes, providing useful quantitative biomarkers. Fundus examination and color fundus photography are the first step for evaluation of optic disc edema, which requires further exams, including fundus autofluorescence, to exclude the presence of optic disc drusen, ocular ultrasound and in certain cases, fluorescein angiography. Although still limited, OCTA could give a support in the evaluation of vascular diseases that involve the optic disc, such as anterior ischemic optic neuropathy, retinal vein occlusion and proliferative diabetic retinopathy. Analyzing the radial peripapillary capillary plexus, OCTA can also highlight early vascular changes in degenerative diseases (i.e., glaucoma, Alzheimer's disease or multiple sclerosis). Multimodal imaging is a cornerstone in the neuro-ophthalmology field, offering unparalleled insight into optic nerve head architecture and vascular integrity in both normal and diseased states.
Additional Links: PMID-42650994
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42650994,
year = {2026},
author = {Fossataro, C and Savastano, MC and Mottola, F and De Dominicis, F and Campaniello, G and Cocuzza, M and Rizzo, C and Amore, F and Salgarello, T and Giudiceandrea, A and Rizzo, S},
title = {Diagnostic Role of Multimodal Imaging in Optic Disc Diseases.},
journal = {Diagnostics (Basel, Switzerland)},
volume = {16},
number = {16},
pages = {},
doi = {10.3390/diagnostics16162591},
pmid = {42650994},
issn = {2075-4418},
abstract = {The aim of this narrative review was to provide a disease-oriented diagnostic framework for selecting and integrating multimodal imaging techniques according to the suspected optic disc disorder. A non-systematic PubMed search was performed to identify relevant literature on optic disc diseases and related imaging appearances. Searches included a combination of terms related to disease features and imaging modalities. The recent introduction of non-invasive imaging devices, such as optical coherence tomography (OCT) and OCT angiography (OCTA), has allowed a remarkable step forward in the knowledge of the optic disc. OCT has revolutionized the diagnosis and monitoring of glaucomatous eyes, providing useful quantitative biomarkers. Fundus examination and color fundus photography are the first step for evaluation of optic disc edema, which requires further exams, including fundus autofluorescence, to exclude the presence of optic disc drusen, ocular ultrasound and in certain cases, fluorescein angiography. Although still limited, OCTA could give a support in the evaluation of vascular diseases that involve the optic disc, such as anterior ischemic optic neuropathy, retinal vein occlusion and proliferative diabetic retinopathy. Analyzing the radial peripapillary capillary plexus, OCTA can also highlight early vascular changes in degenerative diseases (i.e., glaucoma, Alzheimer's disease or multiple sclerosis). Multimodal imaging is a cornerstone in the neuro-ophthalmology field, offering unparalleled insight into optic nerve head architecture and vascular integrity in both normal and diseased states.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Magnetic Resonance Imaging-Based Cortical and Subcortical Volumetric Changes in Alzheimer's Disease: Association with Clinical Severity.
Diagnostics (Basel, Switzerland), 16(16): pii:diagnostics16162596.
Background/Objectives: This study evaluated automated magnetic resonance imaging (MRI) volumetry for characterizing structural brain changes in Alzheimer's disease (AD), mild cognitive impairment (MCI), and cognitively healthy controls (HC), and examined its association with cognitive performance. Methods: This retrospective observational study included consecutively enrolled individuals aged ≥65 years. AD dementia and MCI were diagnosed according to the 2011 National Institute on Aging-Alzheimer's Association (NIA-AA) clinical criteria. Automated volumetric analysis of structural MRI was used to obtain the total intracranial volume-normalized cortical and subcortical volumes, cerebrospinal fluid (CSF) compartments, and hemispheric asymmetry indices. Between-group comparisons were corrected using the Benjamini-Hochberg false discovery rate. Prespecified volumetric markers were evaluated using receiver operating characteristic analysis and internally validated logistic regression models. Results: The study included 102 participants (34 per group). Compared with HC, the AD group showed lower total cerebrum, right hippocampal, and anterior cingulate gyrus (ACgG) volumes and higher CSF volumes. Compared with MCI, the AD group exhibited lower thalamic and caudate volumes. CSF volume showed the highest individual discriminative performance for differentiating AD from HC (AUC = 0.837), whereas the combined hippocampal-ACgG-CSF model showed the best performance for differentiating MCI from HC (AUC = 0.826). After adjustment for diagnostic group, cognitive performance remained positively associated with hippocampal volume and negatively with CSF and lateral ventricular volumes. Conclusions: Automated MRI volumetry may support the quantitative assessment of neurodegeneration in clinically defined AD and MCI. Combined volumetric markers improved discrimination between MCI and HC, although these findings require external validation in larger, longitudinal, biomarker-characterized cohorts.
Additional Links: PMID-42650999
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42650999,
year = {2026},
author = {Alagoz, AN and Ozturk, S and Bunul, SD and Anık, Y and Ozer, T and Cetin Erci, G},
title = {Magnetic Resonance Imaging-Based Cortical and Subcortical Volumetric Changes in Alzheimer's Disease: Association with Clinical Severity.},
journal = {Diagnostics (Basel, Switzerland)},
volume = {16},
number = {16},
pages = {},
doi = {10.3390/diagnostics16162596},
pmid = {42650999},
issn = {2075-4418},
abstract = {Background/Objectives: This study evaluated automated magnetic resonance imaging (MRI) volumetry for characterizing structural brain changes in Alzheimer's disease (AD), mild cognitive impairment (MCI), and cognitively healthy controls (HC), and examined its association with cognitive performance. Methods: This retrospective observational study included consecutively enrolled individuals aged ≥65 years. AD dementia and MCI were diagnosed according to the 2011 National Institute on Aging-Alzheimer's Association (NIA-AA) clinical criteria. Automated volumetric analysis of structural MRI was used to obtain the total intracranial volume-normalized cortical and subcortical volumes, cerebrospinal fluid (CSF) compartments, and hemispheric asymmetry indices. Between-group comparisons were corrected using the Benjamini-Hochberg false discovery rate. Prespecified volumetric markers were evaluated using receiver operating characteristic analysis and internally validated logistic regression models. Results: The study included 102 participants (34 per group). Compared with HC, the AD group showed lower total cerebrum, right hippocampal, and anterior cingulate gyrus (ACgG) volumes and higher CSF volumes. Compared with MCI, the AD group exhibited lower thalamic and caudate volumes. CSF volume showed the highest individual discriminative performance for differentiating AD from HC (AUC = 0.837), whereas the combined hippocampal-ACgG-CSF model showed the best performance for differentiating MCI from HC (AUC = 0.826). After adjustment for diagnostic group, cognitive performance remained positively associated with hippocampal volume and negatively with CSF and lateral ventricular volumes. Conclusions: Automated MRI volumetry may support the quantitative assessment of neurodegeneration in clinically defined AD and MCI. Combined volumetric markers improved discrimination between MCI and HC, although these findings require external validation in larger, longitudinal, biomarker-characterized cohorts.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
The Machine Learning Classification of Retinal Ganglion Cell Dendritic Texture in a 3xTg-Alzheimer's Disease Mouse Model.
Diagnostics (Basel, Switzerland), 16(16): pii:diagnostics16162672.
Background/Objectives: Retinal imaging has considerable potential for monitoring Alzheimer's disease (AD) neurodegeneration, as retinal ganglion cell dendritic atrophy within the inner plexiform layer (IPL) is an early event. We tested whether quantitative optical coherence tomography (OCT) speckle texture analysis combined with supervised machine learning could discriminate AD-related IPL alterations without exogenous contrast agents in a mouse model. Methods: Retinal explants from triple-transgenic AD mice (n = 7, aged 12 months) and C57BL/6 controls (n = 3, aged 15 months) were imaged ex vivo using a custom 1040 nm spectral-domain OCT system. Five grey-level co-occurrence matrix (GLCM) features were extracted from IPL volumes of interest (VOIs) and classified using a linear support vector machine (SVM). Results: AD and control IPL textures formed two completely separable clusters in a two-dimensional feature space defined by contrast and entropy (0°), achieving 100% VOI-level classification accuracy (95% CI: 96.4-100%). However, given the small sample size, VOI-level rather than animal-level validation, lack of histological confirmation, non-interleaved image acquisition, and differences in age/strain between groups, these results represent exploratory dataset separability rather than a validated diagnostic test. Conclusions: These findings demonstrate the feasibility of the ligand-free, texture-based OCT discrimination of IPL alterations, indicating a strong underlying optical signal. Adequately powered, in vivo longitudinal studies with matched controls, interleaved acquisition, animal-level cross-validation, and histological validation are required before any clinical translation.
Additional Links: PMID-42651073
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42651073,
year = {2026},
author = {Kulmaganbetov, M and Khaidarov, S and Bevan, R and Morgan, JE},
title = {The Machine Learning Classification of Retinal Ganglion Cell Dendritic Texture in a 3xTg-Alzheimer's Disease Mouse Model.},
journal = {Diagnostics (Basel, Switzerland)},
volume = {16},
number = {16},
pages = {},
doi = {10.3390/diagnostics16162672},
pmid = {42651073},
issn = {2075-4418},
support = {G0800547/MRC_/Medical Research Council/United Kingdom ; },
abstract = {Background/Objectives: Retinal imaging has considerable potential for monitoring Alzheimer's disease (AD) neurodegeneration, as retinal ganglion cell dendritic atrophy within the inner plexiform layer (IPL) is an early event. We tested whether quantitative optical coherence tomography (OCT) speckle texture analysis combined with supervised machine learning could discriminate AD-related IPL alterations without exogenous contrast agents in a mouse model. Methods: Retinal explants from triple-transgenic AD mice (n = 7, aged 12 months) and C57BL/6 controls (n = 3, aged 15 months) were imaged ex vivo using a custom 1040 nm spectral-domain OCT system. Five grey-level co-occurrence matrix (GLCM) features were extracted from IPL volumes of interest (VOIs) and classified using a linear support vector machine (SVM). Results: AD and control IPL textures formed two completely separable clusters in a two-dimensional feature space defined by contrast and entropy (0°), achieving 100% VOI-level classification accuracy (95% CI: 96.4-100%). However, given the small sample size, VOI-level rather than animal-level validation, lack of histological confirmation, non-interleaved image acquisition, and differences in age/strain between groups, these results represent exploratory dataset separability rather than a validated diagnostic test. Conclusions: These findings demonstrate the feasibility of the ligand-free, texture-based OCT discrimination of IPL alterations, indicating a strong underlying optical signal. Adequately powered, in vivo longitudinal studies with matched controls, interleaved acquisition, animal-level cross-validation, and histological validation are required before any clinical translation.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
The Role of the NMDA Receptor in the Treatment of Psychiatric and Neurological Diseases.
Brain sciences, 16(8): pii:brainsci16080786.
The N-methyl-D-aspartate receptor (NMDAR) is an ionotropic glutamate receptor widely expressed in the CNS and in peripheral tissues where it mediates crucial physiological functions and its dysregulation has been linked to a host of neurological and psychiatric disorders including Alzheimer's disease, schizophrenia, epilepsy, and chronic pain. This work highlights the therapeutic potential in targeting the NMDAR in these disease states by providing a holistic analysis of the existing literature focused on the molecular role of the receptor in applicable disease conditions. While several drugs targeting the NMDAR have been approved for clinical use, many more are in clinical and preclinical development. A significant part of this review assesses the chemical and pharmacological attributes of these molecules and provides a prognostic perspective for their use.
Additional Links: PMID-42651097
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42651097,
year = {2026},
author = {Heath, S and Ruzicka, M and McLoon, T and Gupta, D and Emeri, O and Nnabugwu, Z and Adeniji, A and Brackett, C and Slack, S and Agbowuro, A},
title = {The Role of the NMDA Receptor in the Treatment of Psychiatric and Neurological Diseases.},
journal = {Brain sciences},
volume = {16},
number = {8},
pages = {},
doi = {10.3390/brainsci16080786},
pmid = {42651097},
issn = {2076-3425},
abstract = {The N-methyl-D-aspartate receptor (NMDAR) is an ionotropic glutamate receptor widely expressed in the CNS and in peripheral tissues where it mediates crucial physiological functions and its dysregulation has been linked to a host of neurological and psychiatric disorders including Alzheimer's disease, schizophrenia, epilepsy, and chronic pain. This work highlights the therapeutic potential in targeting the NMDAR in these disease states by providing a holistic analysis of the existing literature focused on the molecular role of the receptor in applicable disease conditions. While several drugs targeting the NMDAR have been approved for clinical use, many more are in clinical and preclinical development. A significant part of this review assesses the chemical and pharmacological attributes of these molecules and provides a prognostic perspective for their use.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Targeting Neutrophil Extracellular Traps in Neuroinflammation: A Therapeutic Perspective on Neurodegenerative Diseases.
Brain sciences, 16(8): pii:brainsci16080792.
Neuroinflammation is a complex process involved in the pathogenesis of several neurodegenerative diseases, including Alzheimer's disease, Parkinson's disease, multiple sclerosis, Huntington's disease, and amyotrophic lateral sclerosis. Neutrophils, although traditionally considered peripheral immune cells, have emerged as active participants in the immunopathology of the central nervous system (CNS) through the release of neutrophil extracellular traps (NETs), structures composed of decondensed chromatin embedded with pro-inflammatory proteins. Evidence suggests that NETs play a dual role: they are protective against pathogens but can also induce tissue damage when produced in excess. Several pathways are involved in their formation, including vesicle-mediated release (vital NETs), the lytic NADPH oxidase (NOX)-dependent pathway, and the mitochondrial pathway. Targeting NETs therapeutically, through the use of NETosis inhibitors, NET-degrading strategies, or blockade of neutrophil migration, has shown promise in reducing neuroinflammation/neurodegeneration and improving neurological outcomes in experimental models. This review aims to investigate both the protective and deleterious roles of NETs and how this knowledge may reveal new therapeutic strategies to modulate neurodegenerative diseases and preserve neural integrity, offering valuable insights for potential applications in clinical practice.
Additional Links: PMID-42651103
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42651103,
year = {2026},
author = {Costa, IM and Kanashiro, A and Barros, GSF and Monteiro, AJ and Bonilha, CS and Galdino, G and Veras, FP},
title = {Targeting Neutrophil Extracellular Traps in Neuroinflammation: A Therapeutic Perspective on Neurodegenerative Diseases.},
journal = {Brain sciences},
volume = {16},
number = {8},
pages = {},
doi = {10.3390/brainsci16080792},
pmid = {42651103},
issn = {2076-3425},
abstract = {Neuroinflammation is a complex process involved in the pathogenesis of several neurodegenerative diseases, including Alzheimer's disease, Parkinson's disease, multiple sclerosis, Huntington's disease, and amyotrophic lateral sclerosis. Neutrophils, although traditionally considered peripheral immune cells, have emerged as active participants in the immunopathology of the central nervous system (CNS) through the release of neutrophil extracellular traps (NETs), structures composed of decondensed chromatin embedded with pro-inflammatory proteins. Evidence suggests that NETs play a dual role: they are protective against pathogens but can also induce tissue damage when produced in excess. Several pathways are involved in their formation, including vesicle-mediated release (vital NETs), the lytic NADPH oxidase (NOX)-dependent pathway, and the mitochondrial pathway. Targeting NETs therapeutically, through the use of NETosis inhibitors, NET-degrading strategies, or blockade of neutrophil migration, has shown promise in reducing neuroinflammation/neurodegeneration and improving neurological outcomes in experimental models. This review aims to investigate both the protective and deleterious roles of NETs and how this knowledge may reveal new therapeutic strategies to modulate neurodegenerative diseases and preserve neural integrity, offering valuable insights for potential applications in clinical practice.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Effects of 40 Hz Brain Stimulation Across Modalities: A Comparative Narrative Review.
Brain sciences, 16(8): pii:brainsci16080808.
Gamma-band oscillations centered around 40 Hz play an important role in cortical communication, and their disruption has been documented as a neurophysiological feature of several neurodegenerative and neuropsychiatric disorders. This narrative review synthesizes preclinical and early-phase clinical evidence for 40 Hz non-invasive brain stimulation across five delivery modalities: (1) auditory stimulation, which leverages the 40 Hz auditory steady-state response (ASSR) to probe parvalbumin-positive (PV[+]) interneuron circuits and serves as a validated neurophysiological biomarker in schizophrenia; (2) visual stimulation, using luminance or invisible spectral flicker to induce steady-state visually evoked potentials (SSVEPs) and, in animal models, to activate microglial phagocytosis; (3) transcranial alternating current stimulation (tACS), which delivers sinusoidal sub-threshold membrane polarization at gamma frequency, with preliminary case-series evidence suggesting tau burden reduction and EEG-based biomarker changes in Alzheimer's disease; (4) repetitive transcranial magnetic stimulation (rTMS), offering focal cortical entrainment that, when combined with tACS in phase-synchronized protocols, produces sustained gamma enhancement in the dorsolateral prefrontal cortex; and (5) multisensory combined stimulation, which engages multiple convergent pathways and currently represents the approach with the most promising early translational signal, including cognitive stabilization and hippocampal volume preservation in small AD trials. While single-session entrainment does not reliably yield cognitive gains, multi-week applications have shown neurophysiological and preliminary biomarker-level changes in selected populations. It should be emphasized, however, that the human evidence base remains early-phase and largely derived from small, often uncontrolled studies; 40 Hz stimulation should accordingly be regarded as a biologically plausible and well-tolerated investigational approach rather than an established therapeutic intervention. Adequately powered, randomized, sham-controlled trials are required before clinical conclusions can be drawn.
Additional Links: PMID-42651118
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42651118,
year = {2026},
author = {Kvašňák, E},
title = {Effects of 40 Hz Brain Stimulation Across Modalities: A Comparative Narrative Review.},
journal = {Brain sciences},
volume = {16},
number = {8},
pages = {},
doi = {10.3390/brainsci16080808},
pmid = {42651118},
issn = {2076-3425},
abstract = {Gamma-band oscillations centered around 40 Hz play an important role in cortical communication, and their disruption has been documented as a neurophysiological feature of several neurodegenerative and neuropsychiatric disorders. This narrative review synthesizes preclinical and early-phase clinical evidence for 40 Hz non-invasive brain stimulation across five delivery modalities: (1) auditory stimulation, which leverages the 40 Hz auditory steady-state response (ASSR) to probe parvalbumin-positive (PV[+]) interneuron circuits and serves as a validated neurophysiological biomarker in schizophrenia; (2) visual stimulation, using luminance or invisible spectral flicker to induce steady-state visually evoked potentials (SSVEPs) and, in animal models, to activate microglial phagocytosis; (3) transcranial alternating current stimulation (tACS), which delivers sinusoidal sub-threshold membrane polarization at gamma frequency, with preliminary case-series evidence suggesting tau burden reduction and EEG-based biomarker changes in Alzheimer's disease; (4) repetitive transcranial magnetic stimulation (rTMS), offering focal cortical entrainment that, when combined with tACS in phase-synchronized protocols, produces sustained gamma enhancement in the dorsolateral prefrontal cortex; and (5) multisensory combined stimulation, which engages multiple convergent pathways and currently represents the approach with the most promising early translational signal, including cognitive stabilization and hippocampal volume preservation in small AD trials. While single-session entrainment does not reliably yield cognitive gains, multi-week applications have shown neurophysiological and preliminary biomarker-level changes in selected populations. It should be emphasized, however, that the human evidence base remains early-phase and largely derived from small, often uncontrolled studies; 40 Hz stimulation should accordingly be regarded as a biologically plausible and well-tolerated investigational approach rather than an established therapeutic intervention. Adequately powered, randomized, sham-controlled trials are required before clinical conclusions can be drawn.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Abnormal FDG-PET Patterns and Amyloid Positivity Predict Personality Changes in Cognitively Preserved Individuals.
Brain sciences, 16(8): pii:brainsci16080812.
Background/Objectives: Clinically overt Alzheimer's disease (AD) is associated with significant changes in personality factors. Earlier studies indicated that personality factors do not remain stable in elderly controls. Whether the early presence of AD neuroimaging markers may predict subsequent changes in personality factors is still debatable. Methods: To address this issue, we examined the association between Big Five factor scores and baseline AD and vascular imaging markers in a previously established cohort of 58 elderly controls with a 4.5-year follow-up. Personality was assessed with the Neuroticism-Extraversion-Openness Personality Inventory-Revised scale at inclusion and 55-month follow-up. Regression models were used to identify predictors of personality factor changes including time, age, sex, APOE epsilon 4 allele, baseline MMSE scores, amyloid PET positivity, abnormal FDG-PET patterns, mesial temporal lobe atrophy and Fazekas scores, and number of microbleeds. Results: In both univariate and multivariable models, the decrease in openness was related to abnormal FDG PET patterns. This single variable explained 15% of the variance of this personality factor. In univariate models, lower MMSE scores and amyloid positivity at baseline were associated with a subsequent decrease in agreeableness scores. In multivariable models, these two parameters explained 11% and 8% of variance respectively. The other personality factors were not associated with AD and cerebrovascular imaging markers. Conclusions: Personality patterns at baseline may impact the emergence of AD pathology but they may also change rapidly as a function of the presence of early AD-related PET abnormalities.
Additional Links: PMID-42651122
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42651122,
year = {2026},
author = {Rodriguez, C and Montandon, ML and Garibotto, V and Haller, S and Herrmann, FR and Giannakopoulos, P},
title = {Abnormal FDG-PET Patterns and Amyloid Positivity Predict Personality Changes in Cognitively Preserved Individuals.},
journal = {Brain sciences},
volume = {16},
number = {8},
pages = {},
doi = {10.3390/brainsci16080812},
pmid = {42651122},
issn = {2076-3425},
support = {320030-169390/SNSF_/Swiss National Science Foundation/Switzerland ; },
abstract = {Background/Objectives: Clinically overt Alzheimer's disease (AD) is associated with significant changes in personality factors. Earlier studies indicated that personality factors do not remain stable in elderly controls. Whether the early presence of AD neuroimaging markers may predict subsequent changes in personality factors is still debatable. Methods: To address this issue, we examined the association between Big Five factor scores and baseline AD and vascular imaging markers in a previously established cohort of 58 elderly controls with a 4.5-year follow-up. Personality was assessed with the Neuroticism-Extraversion-Openness Personality Inventory-Revised scale at inclusion and 55-month follow-up. Regression models were used to identify predictors of personality factor changes including time, age, sex, APOE epsilon 4 allele, baseline MMSE scores, amyloid PET positivity, abnormal FDG-PET patterns, mesial temporal lobe atrophy and Fazekas scores, and number of microbleeds. Results: In both univariate and multivariable models, the decrease in openness was related to abnormal FDG PET patterns. This single variable explained 15% of the variance of this personality factor. In univariate models, lower MMSE scores and amyloid positivity at baseline were associated with a subsequent decrease in agreeableness scores. In multivariable models, these two parameters explained 11% and 8% of variance respectively. The other personality factors were not associated with AD and cerebrovascular imaging markers. Conclusions: Personality patterns at baseline may impact the emergence of AD pathology but they may also change rapidly as a function of the presence of early AD-related PET abnormalities.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
State-Dependent Alterations of Hippocampal Theta-Gamma Coupling in 5xFAD Mice and Their Differential Modulation by Donepezil.
Brain sciences, 16(8): pii:brainsci16080816.
BACKGROUND/OBJECTIVES: Alzheimer's disease (AD) is associated with progressive hippocampal circuit dysfunction, but electrophysiological measures of state-dependent abnormalities and treatment responsiveness remain incompletely characterized. We examined hippocampal theta-gamma coupling in 5xFAD mice across behavioral states and after donepezil.
METHODS: Local field potentials were recorded from CA1 in freely behaving wild-type (WT) and 5xFAD mice during home-cage activity, open-field exploration, and Y-maze testing. Power spectral density and theta-gamma phase-amplitude coupling (PAC) were quantified at the animal level at baseline and after seven days of donepezil.
RESULTS: Untreated 5xFAD mice showed reduced theta-low-gamma coupling during home-cage and open-field activity, but not Y-maze exploration, and elevated theta-high-gamma coupling in all three contexts. Donepezil increased theta-low-gamma coupling during open-field and Y-maze exploration and produced a partial numerical shift toward WT levels in the home cage. For theta-high-gamma coupling, the treated group did not differ significantly from either comparator. Untreated 5xFAD mice also showed reduced center exploration and distance traveled in the open field, while Y-maze spontaneous alternation was unchanged. Theta-high-gamma coupling correlated positively with open-field center time in WT mice only.
CONCLUSIONS: Hippocampal theta-gamma coupling shows frequency- and context-dependent abnormalities in 5xFAD mice. Theta-low-gamma coupling is sensitive to short-term cholinergic modulation during exploration, whereas donepezil's effect on theta-high-gamma coupling remains inconclusive. Animal-level PAC may provide a candidate functional readout, but longitudinal and cross-model validation is required before biomarker claims are justified.
Additional Links: PMID-42651126
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42651126,
year = {2026},
author = {Wang, H and Wang, Y and Lv, Z and Deng, Y and Pan, C and Li, Y and Zhou, Z},
title = {State-Dependent Alterations of Hippocampal Theta-Gamma Coupling in 5xFAD Mice and Their Differential Modulation by Donepezil.},
journal = {Brain sciences},
volume = {16},
number = {8},
pages = {},
doi = {10.3390/brainsci16080816},
pmid = {42651126},
issn = {2076-3425},
support = {2025ZD1801202//National Science and Technology Major Project/ ; },
abstract = {BACKGROUND/OBJECTIVES: Alzheimer's disease (AD) is associated with progressive hippocampal circuit dysfunction, but electrophysiological measures of state-dependent abnormalities and treatment responsiveness remain incompletely characterized. We examined hippocampal theta-gamma coupling in 5xFAD mice across behavioral states and after donepezil.
METHODS: Local field potentials were recorded from CA1 in freely behaving wild-type (WT) and 5xFAD mice during home-cage activity, open-field exploration, and Y-maze testing. Power spectral density and theta-gamma phase-amplitude coupling (PAC) were quantified at the animal level at baseline and after seven days of donepezil.
RESULTS: Untreated 5xFAD mice showed reduced theta-low-gamma coupling during home-cage and open-field activity, but not Y-maze exploration, and elevated theta-high-gamma coupling in all three contexts. Donepezil increased theta-low-gamma coupling during open-field and Y-maze exploration and produced a partial numerical shift toward WT levels in the home cage. For theta-high-gamma coupling, the treated group did not differ significantly from either comparator. Untreated 5xFAD mice also showed reduced center exploration and distance traveled in the open field, while Y-maze spontaneous alternation was unchanged. Theta-high-gamma coupling correlated positively with open-field center time in WT mice only.
CONCLUSIONS: Hippocampal theta-gamma coupling shows frequency- and context-dependent abnormalities in 5xFAD mice. Theta-low-gamma coupling is sensitive to short-term cholinergic modulation during exploration, whereas donepezil's effect on theta-high-gamma coupling remains inconclusive. Animal-level PAC may provide a candidate functional readout, but longitudinal and cross-model validation is required before biomarker claims are justified.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Altered Driving Structures and Controllability Patterns of Brain Effective Networks in Mild Cognitive Impairment and Alzheimer's Disease.
Brain sciences, 16(8): pii:brainsci16080820.
Background: Alzheimer's disease (AD) and mild cognitive impairment (MCI) are associated with abnormalities in brain networks. However, differences in the control architecture of directed brain effective networks among normal controls (NC), patients with MCI, and patients with AD remain insufficiently characterized. This study investigated diagnostic-group differences in driving structures and controllability patterns in structurally constrained brain effective networks. Methods: Multimodal neuroimaging data, including diffusion MRI and resting-state functional MRI, were used to construct brain effective networks in the NC, MCI, and AD groups. Directed interregional interactions were estimated using multivariate autoregressive modeling under structural connectivity constraints. A structural controllability framework based on maximum matching was then applied to identify group-level driving nodes and driving edges. Controllability index was compared across groups separately at the whole-brain, resting-state network (RSN), and regional levels. Results: Group-level driving structures differed among the NC, MCI, and AD groups. Driving nodes were mainly distributed within the default mode network, with additional somatosensory and motor network drivers in MCI and a frontoparietal network driver in AD. The whole-brain controllability index decreased from NC to MCI and increased from MCI to AD. Similar nonmonotonic patterns were observed in the default mode and frontoparietal networks, whereas the somatosensory and motor and visual networks showed different group patterns. Regional node controllability was negatively associated with indegree and positively associated with outdegree, and driving nodes were more likely to correspond to outdegree hubs. Hub-level controllability showed a pattern opposite to that of the whole brain. Several regional indices were associated with cognitive scores, although these pooled cross-sectional associations may partly reflect diagnostic-group separation. Conclusions: MCI and AD were associated with differences in driving structures and controllability patterns in directed brain effective networks. These findings provide preliminary network-level observations on altered directed information propagation across the AD clinical spectrum and require validation in larger, independent, and longitudinal cohorts.
Additional Links: PMID-42651131
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42651131,
year = {2026},
author = {Xue, J and Yan, X and Wei, J and Gao, M and Liang, K},
title = {Altered Driving Structures and Controllability Patterns of Brain Effective Networks in Mild Cognitive Impairment and Alzheimer's Disease.},
journal = {Brain sciences},
volume = {16},
number = {8},
pages = {},
doi = {10.3390/brainsci16080820},
pmid = {42651131},
issn = {2076-3425},
support = {24YJCZH366 and 25YJCZH280//Youth Fund Project for Humanities and Social Sciences Research of the Ministry of Education/ ; 202403021212185 and 202503021212275//Youth Science Research Project of Basic Research Program of Shanxi Province/ ; 2024L158//Science and Technology Innovation Project of Higher Education Institutions of Shanxi Province/ ; },
abstract = {Background: Alzheimer's disease (AD) and mild cognitive impairment (MCI) are associated with abnormalities in brain networks. However, differences in the control architecture of directed brain effective networks among normal controls (NC), patients with MCI, and patients with AD remain insufficiently characterized. This study investigated diagnostic-group differences in driving structures and controllability patterns in structurally constrained brain effective networks. Methods: Multimodal neuroimaging data, including diffusion MRI and resting-state functional MRI, were used to construct brain effective networks in the NC, MCI, and AD groups. Directed interregional interactions were estimated using multivariate autoregressive modeling under structural connectivity constraints. A structural controllability framework based on maximum matching was then applied to identify group-level driving nodes and driving edges. Controllability index was compared across groups separately at the whole-brain, resting-state network (RSN), and regional levels. Results: Group-level driving structures differed among the NC, MCI, and AD groups. Driving nodes were mainly distributed within the default mode network, with additional somatosensory and motor network drivers in MCI and a frontoparietal network driver in AD. The whole-brain controllability index decreased from NC to MCI and increased from MCI to AD. Similar nonmonotonic patterns were observed in the default mode and frontoparietal networks, whereas the somatosensory and motor and visual networks showed different group patterns. Regional node controllability was negatively associated with indegree and positively associated with outdegree, and driving nodes were more likely to correspond to outdegree hubs. Hub-level controllability showed a pattern opposite to that of the whole brain. Several regional indices were associated with cognitive scores, although these pooled cross-sectional associations may partly reflect diagnostic-group separation. Conclusions: MCI and AD were associated with differences in driving structures and controllability patterns in directed brain effective networks. These findings provide preliminary network-level observations on altered directed information propagation across the AD clinical spectrum and require validation in larger, independent, and longitudinal cohorts.},
}
RevDate: 2026-08-27
CmpDate: 2026-08-27
Brain O-GlcNAcylation in Neurodegenerative Diseases: Context-Dependent Mechanisms and Precision Therapeutic Translation.
Brain sciences, 16(8): pii:brainsci16080828.
O-linked β-N-acetylglucosamine modification (O-GlcNAcylation) is a dynamic, nutrient-sensitive post-translational modification that couples hexosamine biosynthesis pathway flux to protein function in neurons and glia. This reversible cycling, catalyzed by O-GlcNAc transferase (OGT) and O-GlcNAcase (OGA), integrates glucose, glutamine, acetyl-CoA, and nucleotide metabolism with synaptic activity, mitochondrial adaptation, transcriptional regulation, proteostasis, and neuroimmune signaling. Dysregulated O-GlcNAc cycling has been implicated in major neurodegenerative diseases, including Alzheimer's disease (AD), Parkinson's disease (PD), amyotrophic lateral sclerosis (ALS), frontotemporal dementia (FTD), and Huntington's disease (HD), through effects on disease-related proteins, autophagy, mitochondrial function, and inflammatory networks. However, available evidence does not support a universal model in which global O-GlcNAc elevation is uniformly protective or global reduction is uniformly pathogenic. In this mechanistic narrative review, we integrate disease-specific and substrate-focused findings while distinguishing relatively mature translational evidence from model-based or hypothesis-generating observations. We propose a state-resolved framework in which disease-relevant O-GlcNAc states are interpreted across biological contexts, substrate/site specificity, and intervention dynamics. This framework helps reconcile divergent findings across experimental systems and highlights the limitations of indiscriminate global pathway modulation. Although OGA inhibitors represent the most advanced therapeutic strategy, their broad substrate effects underscore the need for pharmacodynamic biomarkers, human validation, brain-targeted delivery, and state-resolved approaches. Moving from bulk O-GlcNAc measurements toward precise correction of disease-relevant O-GlcNAc states across defined biological contexts will be essential for translating this biology into clinically meaningful interventions.
Additional Links: PMID-42651138
Publisher:
PubMed:
Citation:
show bibtex listing
hide bibtex listing
@article {pmid42651138,
year = {2026},
author = {Lu, S and Chen, Z and Wang, Y and Bian, H and Yu, S and Huang, L},
title = {Brain O-GlcNAcylation in Neurodegenerative Diseases: Context-Dependent Mechanisms and Precision Therapeutic Translation.},
journal = {Brain sciences},
volume = {16},
number = {8},
pages = {},
doi = {10.3390/brainsci16080828},
pmid = {42651138},
issn = {2076-3425},
support = {LH2019H106//Natural Science Foundation of Heilongjiang Province/ ; YQJH2023152//Excellent Young Teachers Basic Research Support Program" for Provincial Undergraduate Colleges in Heilongjiang Province/ ; ZHY2025-009//Heilongjiang Province Traditional Chinese Medicine Research Project/ ; },
abstract = {O-linked β-N-acetylglucosamine modification (O-GlcNAcylation) is a dynamic, nutrient-sensitive post-translational modification that couples hexosamine biosynthesis pathway flux to protein function in neurons and glia. This reversible cycling, catalyzed by O-GlcNAc transferase (OGT) and O-GlcNAcase (OGA), integrates glucose, glutamine, acetyl-CoA, and nucleotide metabolism with synaptic activity, mitochondrial adaptation, transcriptional regulation, proteostasis, and neuroimmune signaling. Dysregulated O-GlcNAc cycling has been implicated in major neurodegenerative diseases, including Alzheimer's disease (AD), Parkinson's disease (PD), amyotrophic lateral sclerosis (ALS), frontotemporal dementia (FTD), and Huntington's disease (HD), through effects on disease-related proteins, autophagy, mitochondrial function, and inflammatory networks. However, available evidence does not support a universal model in which global O-GlcNAc elevation is uniformly protective or global reduction is uniformly pathogenic. In this mechanistic narrative review, we integrate disease-specific and substrate-focused findings while distinguishing relatively mature translational evidence from model-based or hypothesis-generating observations. We propose a state-resolved framework in which disease-relevant O-GlcNAc states are interpreted across biological contexts, substrate/site specificity, and intervention dynamics. This framework helps reconcile divergent findings across experimental systems and highlights the limitations of indiscriminate global pathway modulation. Although OGA inhibitors represent the most advanced therapeutic strategy, their broad substrate effects underscore the need for pharmacodynamic biomarkers, human validation, brain-targeted delivery, and state-resolved approaches. Moving from bulk O-GlcNAc measurements toward precise correction of disease-relevant O-GlcNAc states across defined biological contexts will be essential for translating this biology into clinically meaningful interventions.},
}
▼ ▼ LOAD NEXT 100 CITATIONS
RJR Experience and Expertise
Researcher
Robbins holds BS, MS, and PhD degrees in the life sciences. He served as a tenured faculty member in the Zoology and Biological Science departments at Michigan State University. He is currently exploring the intersection between genomics, microbial ecology, and biodiversity — an area that promises to transform our understanding of the biosphere.
Educator
Robbins has extensive experience in college-level education: At MSU he taught introductory biology, genetics, and population genetics. At JHU, he was an instructor for a special course on biological database design. At FHCRC, he team-taught a graduate-level course on the history of genetics. At Bellevue College he taught medical informatics.
Administrator
Robbins has been involved in science administration at both the federal and the institutional levels. At NSF he was a program officer for database activities in the life sciences, at DOE he was a program officer for information infrastructure in the human genome project. At the Fred Hutchinson Cancer Research Center, he served as a vice president for fifteen years.
Technologist
Robbins has been involved with information technology since writing his first Fortran program as a college student. At NSF he was the first program officer for database activities in the life sciences. At JHU he held an appointment in the CS department and served as director of the informatics core for the Genome Data Base. At the FHCRC he was VP for Information Technology.
Publisher
While still at Michigan State, Robbins started his first publishing venture, founding a small company that addressed the short-run publishing needs of instructors in very large undergraduate classes. For more than 20 years, Robbins has been operating The Electronic Scholarly Publishing Project, a web site dedicated to the digital publishing of critical works in science, especially classical genetics.
Speaker
Robbins is well-known for his speaking abilities and is often called upon to provide keynote or plenary addresses at international meetings. For example, in July, 2012, he gave a well-received keynote address at the Global Biodiversity Informatics Congress, sponsored by GBIF and held in Copenhagen. The slides from that talk can be seen HERE.
Facilitator
Robbins is a skilled meeting facilitator. He prefers a participatory approach, with part of the meeting involving dynamic breakout groups, created by the participants in real time: (1) individuals propose breakout groups; (2) everyone signs up for one (or more) groups; (3) the groups with the most interested parties then meet, with reports from each group presented and discussed in a subsequent plenary session.
Designer
Robbins has been engaged with photography and design since the 1960s, when he worked for a professional photography laboratory. He now prefers digital photography and tools for their precision and reproducibility. He designed his first web site more than 20 years ago and he personally designed and implemented this web site. He engages in graphic design as a hobby.
RJR Picks from Around the Web (updated 11 MAY 2018 )
Old Science
Weird Science
Treating Disease with Fecal Transplantation
Fossils of miniature humans (hobbits) discovered in Indonesia
Paleontology
Dinosaur tail, complete with feathers, found preserved in amber.
Astronomy
Mysterious fast radio burst (FRB) detected in the distant universe.
Big Data & Informatics
Big Data: Buzzword or Big Deal?
Hacking the genome: Identifying anonymized human subjects using publicly available data.