Atlas of Brain Aging Derived from Cortical Surface Area Changes

X Xingyan Chen (Hefei National Research Center for Physical Sciences at the Microscale and School of Chemistry and Materials Science) W Weichen Yan S Shichao Su M Mingrui Zhuang H Hongkai Wang (Institute of Chemical Biology) S Songyao Zhang (College of Materials Science and Engineering, South China University of Technology 2 , Guangzhou 510640,)

Abstract

During brain aging, atrophy of cortical surface area exhibits region-specific patterns that extend beyond classical anatomical divisions. However, a specialized brain atlas of healthy brain aging has not yet been developed. We propose a two-stage spatially regularized non-negative matrix factorization (NMF) strategy to construct a brain aging atlas. In the first stage, we extract initial morphological covariance features from 1,066 cortical surface area scans of 436 (196 males, 240 females) cognitively normal adults (aged 51–96) from the ADNI cohort using standard NMF to ensure sparsity and biological interpretability. In the second stage, we perform refined smoothing on the manifold structure to rectify boundary noise. This strategy enhances the spatial continuity of the atlas while preserving data-driven patterns. Using this atlas, we identified three distinct cortical atrophy patterns: frontal–temporal–occipital dominant (FTOD), parietal slow-changing (PSC), and Diffuse patterns. Our findings revealed that: (1) Cortical aging exhibits pronounced spatiotemporal heterogeneity, with the frontal, temporal, and occipital cortices showing sensitivity to age-related changes. Significant interhemispheric differences were observed in atrophy rates, with no sex-related effects. (2) The right hemisphere exhibited faster atrophy than the left, and all atrophy patterns showed limited interhemispheric spatial overlap (Dice = 0.653), indicating pronounced hemispheric asymmetry in cortical surface area aging. (3) Different atrophy patterns demonstrate pattern-specific associations with cognitive performance: higher relative preservation of left-hemispheric FTOD pattern is associated with less subjective cognitive decline, whereas greater relative preservation of Diffuse and PSC patterns correlates with higher subjective cognitive decline. Significance statement Using a two-stage spatially regularized NMF (ST-NMF) strategy, we constructed the first systematic cortical surface area (SA) aging atlas for healthy middle-aged and older adults. Our atlas reveals three distinct cortical atrophy patterns: frontal-temporal-occipital dominant, parietal slow-changing, and Diffuse patterns. These patterns exhibit spatiotemporal heterogeneity, hemispheric asymmetry, and differential associations with cognitive domains, providing a novel framework for understanding cortical aging.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 17, 2026
Pages e2248252026
ISSN 0270-6474
Publisher Society for Neuroscience

Journal Info

Journal of Neuroscience

Society for Neuroscience

ISSN: 0270-6474 Life Sciences

Authors (6)

X

Xingyan Chen

Hefei National Research Center for Physical Sciences at the Microscale and School of Chemistry and Materials Science

W

Weichen Yan

S

Shichao Su

M

Mingrui Zhuang

H

Hongkai Wang

Institute of Chemical Biology

S

Songyao Zhang

College of Materials Science and Engineering, South China University of Technology 2 , Guangzhou 510640,