Skip to content
Open access

Epigenetic and brain age across development: Performance and associations in the MIND consortium

Jul 2026 · bioRxiv · 0 citations · 43 references
Biology

TL;DR

This most comprehensive assessment of epigenetic and brain age models across development is provided, evaluating how these models associate with chronological age and with each other, and how these associations change across development.

Abstract

Understanding how biological age measures perform across development lays the groundwork for investigations into lifespan trajectories of healthy aging. We provide the most comprehensive assessment of epigenetic and brain age models across development (birth to 24 years; ≤20,917 observations across 15 cohorts), evaluating how these models associate with chronological age and with each other, and how these associations change across development. Chronological age-prediction accuracy of epigenetic and brain age models was modest and varied substantially. Accuracy improved with age and stabilized by middle childhood. Few brain and fewer epigenetic clocks performed stably and well across all developmental stages. Performance was better when age range and tissue corresponded between training and testing data. Associations between epigenetic-brain age residuals were small, and changed little across development, tissues or clock generation. Given this developmentally dynamic system of epigenetic-brain age performances and associations, we give key recommendations to improve developmental research in this field.

Read PDF

Similar papers

Aug 2026

Developmental conditions and adult socioeconomic context jointly shape cognitive aging through brain reserve.

OBJECTIVES Cognitive aging shows substantial inter-individual heterogeneity, which may be shaped by both early-life developmental conditions and adult socioeconomic environments. However, how these life-course factors jointly relate to cognitive aging and the potential neuroanatomical correlates underlying these associ...

Wei-Xue Xiong, Xiaolu Sui, Zhao-Min Xie et al. · 0 citations
Open access 2026

Lower Epigenetic Age Acceleration in Older Adults with Preserved Global Cognitive Performance

Epigenetic clocks estimate biological age, yet evidence linking decelerated epigenetic aging to healthy cognitive performance in community-dwelling older adults is limited. Cross-sectional study within the population-based ALEXANDROS cohort (Santiago, Chile). Healthy Cognitive Agers (HCA) were participants aged ≥80 yea...

Unknown authors · 0 citations
Open access Sep 2026

Puberty timing and cognitive functioning: insights from the Adolescent Brain Cognitive Development (ABCD) study and Mendelian randomization.

Findings suggest a causal link between earlier puberty timing and poorer cognitive performance, indicating limited clinical implications at the individual level, while potentially remaining relevant at the population level.

L. Dinkelbach, Bianca Serio, Sofie L. Valk et al. · 0 citations
Sep 2026

Exploring Epigenetic Aging and Cognitive Change in Middle Adulthood.

Greater age deviation (AgeDev), in which a person's biological age is older than their chronological age, is associated with worse cognitive performance. Most findings, however, rely on lab-administered cognitive measures and do not account for time-ordered effects of practice. The present study leveraged a measurement...

Daisy V. Zavala, Sharon H. Kim, John Felt et al. · 0 citations
Review Sep 2026

Epigenetic Clocks as Biomarkers of Early-Life Development: State of the Field and Opportunities

The social world impacts maternal–fetal biology, influencing developmental trajectories and future health risk. Health and social programs aim to intervene in the first 1,000 days to promote optimal child outcomes. However, existing tools to evaluate perinatal programs are limited in their ability to project policy-rel...

Pamela Scorza, Mychal Anthony-Sawyerr, Monique Gilmore et al. · 0 citations
Open access Sep 2026

System-Specific Epigenetic Aging Signatures in Autistic Adults

Background Autism is a lifelong neurodevelopmental condition, but the biological processes shaping aging are poorly understood. DNA methylation-based measures index physiological decline and mortality risk independently of chronological age. We tested whether biological aging differs in autistic adults, whether differe...

Abigail Dickinson, Candace R. Lewis, D. Geschwind et al. · 0 citations

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.