Exploring Links between Brain Image-Derived Phenotypes and Accelerometer-Measured Physical Activity in the UK Biobank
Overview
- Department of Biostatistics, Johns Hopkins University, Baltimore, MD, USA
- Department of Biostatistics and Informatics, Colorado School of Public Health, Aurora, CO, USA
Abstract
A broad range of neurodegenerative disorders are associated with altered functional connectivity (FC) patterns and atrophy of gray matter volume (GMV). Similarly, there are links between physical activity (PA) and a number of neurodegenerative disorders. However, studies investigating the link between brain image-derived phenotypes (IDPs) and PA remain limited. Using data from the UK Biobank, we investigated the multivariate association between two sets of brain IDPs (related to FC and GMV) and PA using canonical correlation analysis (CCA). We further quantified the importance of individual PA variables in modeling each set of IDPs using both supervised and unsupervised approaches, and assessed their predictive performance for individual brain phenotypes. Finally, we evaluated the predictive performance of brain IDPs and PA variables for diabetes, stroke, coronary heart disease (CHD), and cancer using nested logistic regression models, with their relative contributions to explained variation in disease status quantified using a coefficient of determination specifically designed for logistic regression. Our analyses identified a statistically robust but low-dimensional axis of shared variation between PA and FC (canonical correlation r = 0.50), whereas the corresponding association between PA and GMV was weaker (r = 0.19). Brain features contributing most strongly to these associations were located in motor- and attention-related networks. Across predictive models, a small set of correlated PA measures reflecting activity intensity and circadian rhythm consistently emerged as representative predictors of both FC and GMV variation. Finally, we found that PA variables demonstrated greater predictive utility than either FC or GMV alone, particularly for CHD and diabetes, as assessed by both the area under the receiver operating characteristic (ROC) curve (AUC) and the proportion of explained variation. Together, these findings indicate that objectively measured PA is strongly associated with a set of motor-related brain features and provides substantial predictive information for cardiometabolic disease risk, while cross-sectional neuroimaging measures offer more modest incremental explanatory value.
Reproduced under the paper's license (CC BY), from the paper cited above.
Code
No file of the authors' code could be read here: it is described below, and read at its source.
Dongliang-JHU/PA-Brain-IDPs-UKB
e7483734c4ba9220cf871128040c6941729dd154, 31 January 2026Availability: 1 check, the latest on 30 September 2026: the link answers
- 30 September 2026: the link answers
The paper's code and data availability statement is in the Data section.
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Data
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Data and Code Availability
Code to reproduce analyses is available on GitHub: https://
Reproduced under the paper's license (CC BY), from the paper cited above.
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Version 1, 30 September 2026: the first record
Recorded: type, language, journal, dates, 4 authors, 6 keywords, 6 funders, 62 references.
Cite
This paper
Zhang, D., Leroux, A., Crainiceanu, C. M., & Lindquist, M. A. (2026). Exploring Links between Brain Image-Derived Phenotypes and Accelerometer-Measured Physical Activity in the UK Biobank. bioRxiv (preprint). https://
BibTeX
@article{zhang2026explor
author = {Zhang, Dongliang and Leroux, Andrew and Crainiceanu, Ciprian M. and Lindquist, Martin A.},
title = {{Exploring Links between Brain Image-Derived Phenotypes and Accelerometer-Measured Physical Activity in the UK Biobank}},
journal = {bioRxiv (preprint)},
year = {2026},
month = mar,
publisher = {bioRxiv},
issn = {2692-8205},
doi = {10.64898/
url = {https://
}
RIS
TY - JOUR
AU - Zhang, Dongliang
AU - Leroux, Andrew
AU - Crainiceanu, Ciprian M.
AU - Lindquist, Martin A.
TI - Exploring Links between Brain Image-Derived Phenotypes and Accelerometer-Measured Physical Activity in the UK Biobank
T2 - bioRxiv (preprint)
J2 - bioRxiv
PY - 2026
DA - 2026/
SN - 2692-8205
PB - bioRxiv
DO - 10.64898/
UR - https://
LA - en
ER -
CSL-JSON
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