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Updated: Mar 28, 2026

Measuring Single-Cell Aging with an Imaging-based Biomarker of Chromatin and Epigenetic Aging
Published on: January 30, 2026
How epigenetic clocks tick: Unpacking the black box by deciphering biological pathways and transcriptomic signatures
Thalida Em Arpawong1, Steve Cole2, Harshanna Badhesha1
1Leonard Davis School of Gerontology, University of Southern California, Los Angeles, CA, USA.
Abstract:
Epigenetic clocks derived from DNA methylation robustly predict biological aging, health, and mortality, yet differ substantially in their predictive profiles. The biological processes underlying these differences remain poorly understood. Using data from 3,227 participants in the U.S. Health and Retirement Study, with contemporaneous DNA methylation and RNA-sequencing, we examined the five most widely used epigenetic clocks (Horvath, Hannum, PhenoAge, GrimAge, and DunedinPACE). Differential gene expression analyses identified clock-specific transcriptional signatures and enriched biological pathways, revealing substantial heterogeneity in the molecular processes captured by each clock. We further derived transcriptomic aging gene scores (TAGS), from differentially expressed genes of each age acceleration clock, and evaluated their associations with aging-related phenotypes. TAGS complemented DNAm clocks, and in several cases, showed stronger associations with age-related morbidities and mortality. Findings revealed more unique than common biological processes underlying clocks, illuminate their internal mechanisms, and advance their interpretability for aging research and clinical applications.
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