Spatially convergent functional MRI signatures of diabetes and male sex identify genetic vulnerabilities to accelerated brain aging

Abstract Age-related cognitive decline results from complex interactions between neuroendocrine and neurometabolic processes that undergo lifelong degredation, yet the mechanisms underlying these interactions remain poorly understood. This study examined the effects of diabetes and sex on functional brain networks across aging through analysis of two large cohorts (N=1,621 total) using both 3T and 7T functional MRI, complemented by spatial transcriptomic data from over 14,000 genes from six post-mortem brains. Four networks—cingulo-opercular, default mode, salience, and lateral somatomotor—exhibited significant functional decline in both individuals with diabetes and independently in males. Gene expression analysis of vulnerable networks revealed significant overexpression of insulin-dependent glucose transporters, dopaminergic and GABAergic synaptic genes, and VEGFA-VEGFR2 pathway components. These findings suggest functionally-specific circuit vulnerability to metabolic and hormonal dysregulation, potentially offering targets for early intervention before irreversible neurodegeneration occurs.

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Publication Details

Journal
Brain Communications
Published
2026-09-18
DOI
https://doi.org/10.1093/braincomms/fcag347
Primary Topic
Functional Brain Connectivity Studies
Type
article
Field-Weighted Citation Impact
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article

Spatially convergent functional MRI signatures of diabetes and male sex identify genetic vulnerabilities to accelerated brain aging

Corey Weistuch, Helmut H. Strey, David T. Jones, Anthony G. Chesebro et al.
Brain Communications
Functional Brain Connectivity Studies
article

Spatially convergent functional MRI signatures of diabetes and male sex identify genetic vulnerabilities to accelerated brain aging

Corey Weistuch, Helmut H. Strey, David T. Jones, Anthony G. Chesebro, Eva‐Maria Ratai, Luna R. Rohm, Botond B Antal, Lilianne R Mujica-Parodi
article en

Abstract

Abstract Age-related cognitive decline results from complex interactions between neuroendocrine and neurometabolic processes that undergo lifelong degredation, yet the mechanisms underlying these interactions remain poorly understood. This study examined the effects of diabetes and sex on functional brain networks across aging through analysis of two large cohorts (N=1,621 total) using both 3T and 7T functional MRI, complemented by spatial transcriptomic data from over 14,000 genes from six post-mortem brains. Four networks—cingulo-opercular, default mode, salience, and lateral somatomotor—exhibited significant functional decline in both individuals with diabetes and independently in males. Gene expression analysis of vulnerable networks revealed significant overexpression of insulin-dependent glucose transporters, dopaminergic and GABAergic synaptic genes, and VEGFA-VEGFR2 pathway components. These findings suggest functionally-specific circuit vulnerability to metabolic and hormonal dysregulation, potentially offering targets for early intervention before irreversible neurodegeneration occurs.

Brain Communications
Santa Fe Institute (US), Mayo Clinic (US), Memorial Sloan Kettering Cancer Center (US), Mayo Clinic in Arizona (US), Athinoula A. Martinos Center for Biomedical Imaging (US), Mayo Clinic in Florida (US), Stony Brook University (US), Charité - Universitätsmedizin Berlin (DE)
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Openalex Percentile: Top 9%
Functional Brain Connectivity Studies
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