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bioRxiv · 10.64898/2026.05.29.728670

HEALTHY AGING AS INFORMATION DIVERGENCE IN THE MULTIPLEX BRAIN

Abstract

AO_SCPLOWBSTRACTC_SCPLOWUnderstanding the co-evolution of the human brains structural scaffold and functional traffic across the adult lifespan remains a fundamental challenge in neuroscience. While age-related degradation in grey matter and functional activation is well-documented, the joint trajectory of the structural (SC) and functional (FC) connectomes is often overlooked due to the lack of an integrative framework. Here, we model the brain as a multiplex network to quantify the information-theoretic interdependencies between these two layers in a cross-sectional cohort of 589 healthy individuals (ages 18-88) from the Cambridge Centre for Ageing and Neuroscience (Cam-CAN) dataset. Using Jensen-Shannon Divergence and relative entropy metrics, we identify a fundamental organizing principle of healthy aging characterized by: a progressive information divergence where functional dynamics increasingly "untether" from their underlying structural constraints. Our results reveal that this decoupling follows a robust linear trajectory, yet is highly spatially hetero-geneous. Meso-scale community analysis using the Multiplex Map Equation identifies subcortical hubs--specifically the putamen, pallidum, caudate, and thalamus--as the primary epicenters of age-related SC-FC divergence. This topological shift toward functional independence in subcortical "switchboards" provides a mechanistic connectomic signature for the well-documented decline in fluid intelligence and motor adaptation that accompanies aging. In striking contrast, the limbic core (hippocampus and entorhinal cortex) exhibits remarkable stability across the lifespan, suggesting a biological imperative to preserve high-fidelity memory circuits amidst global communicative rewiring. By framing healthy aging as a systematic subcortical untethering alongside limbic resilience, our work provides a powerful new multiplex baseline to distinguish normative cognitive decline from the early topological signals of neurodegenerative disease. Significance StatementHealthy aging involves a fundamental reorganization of the brains information architecture. By modeling the brain as a multiplex network and leveraging information-theoretic measures, we demonstrate that adult lifespan development is characterized by a progressive "untethering" of functional dynamics from their underlying structural constraints. This decoupling is driven by a striking geometric paradox within subcortical hubs: while physical structural scaffolds undergo severe network constriction and isolation, their functional boundaries expand and blur in a state of neural de-differentiation. This architectural mismatch is mediated by a synchronized prefrontal-to-limbic pathway shift that operates collinearly with chronological age and mirrors the selective decline of fluid intelligence and motor adaptation that accompanies aging. Our work establishes a rigorous multiplex framework that moves beyond descriptive accounts of neural tissue loss to provide a normative baseline for distinguishing healthy brain aging from neurodegeneration.

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BibTeXRIS

Ghosh, D., Ray, D., Das, M.. 2026-06-02. HEALTHY AGING AS INFORMATION DIVERGENCE IN THE MULTIPLEX BRAIN. https://doi.org/10.64898/2026.05.29.728670

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