Abstract
Epigenetic clocks are accurate predictors of human chronological age based on the analysis of DNA methylation (DNAm) at specific CpG sites. However, a systematic comparison between DNA methylation data and other omics datasets has not yet been performed. Moreover, available DNAm age predictors are based on datasets with limited ethnic representation. To address these knowledge gaps, we generated and analyzed DNA methylation datasets from two independent Chinese cohorts, revealing age-related DNAm changes. Additionally, a DNA methylation aging clock (iCAS-DNAmAge) and a group of DNAm-based multi-modal clocks for Chinese individuals were developed, with most of them demonstrating strong predictive capabilities for chronological age. The clocks were further employed to predict factors influencing aging rates. The DNAm aging clock, derived from multi-modal aging features (compositeAge-DNAmAge), exhibited a close association with multi-omics changes, lifestyles, and disease status, underscoring its robust potential for precise biological age assessment. Our findings offer novel insights into the regulatory mechanism of age-related DNAm changes and extend the application of the DNAm clock for measuring biological age and aging pace, providing the basis for evaluating aging intervention strategies.
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Details
; Dan-Dan Gao 3 ; Ye, Jinlin 3 ; Yang, Kuan 1 ; Zuo, Yuesheng 1 ; Ma, Shuai 5
; Yun-Gui, Yang 1
; Qu, Jing 6
; Zhang, Feng 2
; Jia, Peilin 1
; Guang-Hui Liu 6
; Zhang, Weiqi 1
1 CAS Key Laboratory of Genomic and Precision Medicine, Beijing Institute of Genomics, Chinese Academy of Sciences and China National Center for Bioinformation , Beijing 100101 , China
2 Division of Orthopaedics, Quzhou Affiliated Hospital of Wenzhou Medical University , Quzhou 324000 , China
3 The Joint Innovation Center for Engineering in Medicine, Quzhou Affiliated Hospital of Wenzhou Medical University , Quzhou 324000 , China
4 Advanced Innovation Center for Human Brain Protection, and National Clinical Research Center for Geriatric Disorders, Xuanwu Hospital Capital Medical University , Beijing 100053 , China
5 Aging Biomarker Consortium , Beijing 100101 , China
6 University of Chinese Academy of Sciences , Beijing 100049 , China





