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DNA methylation signatures in skeletal muscle associated with physical function in healthy older adults

delete2026-08-08
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OA
AI
X
Xiaoxiao Wen
M
Mingjing Chen
G
Guanhong Miao
C
Christopher Wu
A
Anna Picca
J
Javier Tamargo
X
Xiangyang Lou
K
Kevin Wu
S
Stephen Anton
C
Christiaan Leeuwenburgh
J
Jinying Zhao *
DOI:10.1007/s11357-026-02410-9delete
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Abstract

Abstract

En 中文
Despite the substantial variability in physical function among older adults, the molecular mechanisms remain poorly characterized, particularly within skeletal muscle. This study aimed to determine the patterns of DNA methylation in skeletal muscle associated with physical function in healthy older adults. We analyzed DNA methylation (EPIC v2 array; 875,554 CpG sites) in skeletal muscle from 92 healthy older adults (median age 74; 62% female). Associations were examined across five phenotypes: Short Physical Performance Battery (SPPB), 6-min walk test (6MWT), handgrip strength, perceived disability (PAT-D), and lifestyle health (modified Life’s Essential 8). Linear regression models adjusted for age, sex, race, BMI, and muscle fiber composition. Genomic inflation corrected via the BACON method (FDR < 0.05). Gene set enrichment analysis was performed on suggestive hits (FDR < 0.1). We identified significant differentially methylated probes (DMPs) and regions (DMRs) across all phenotypes: SPPB (70 DMPs, 22 DMRs), 6MWT (16 DMPs, 566 DMRs), handgrip strength (2 DMRs), PAT-D (19 DMPs, 1 DMR), and lifestyle health (2 DMPs). DMRs largely overlapped promoters. Identified genes overlapped known musculoskeletal and neurological GWAS hits, including RUNX2 and FOXL1 (bone mineral density), IGFBP3 (muscle mass), and NEK1 and SHANK1 (neurological function). Enrichment analysis revealed that 6MWT-associated genes relate to nervous and skeletal system development, while handgrip-associated genes involve cytoskeletal dynamics and protein assembly. Epigenetic variation in aging skeletal muscle is associated with physical function. The enrichment of pathways related to nervous and musculoskeletal development suggests specific epigenetic mechanisms underlying functional decline, offering potential targets for intervention in older adults.
Keywords:
Epigenetics
DNA methylation
Skeletal muscle
Physical function
Healthy aging

Journal

GeroScience cover
GeroScience
IF:
5.4
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2.4K
Citations:
6.3K

Organization

D
Department of Medicine and Surgery
Scholars:
473
Papers: 237
Citations: 0
C
College of Medicine
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3.7K
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I
Institute on Aging
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H
health informatics institute
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D
Department of Biostatistics
Scholars:
160
Papers: 113
Citations: 3
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