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Temporal multi-omic analysis uncovers sex-biased molecular programs underlying skeletal muscle adaptation to endurance training.

Many GM, Jin C, Day NJ, Iyer G, Smith G, Voos K et al. ยท Cell reports ยท 2026

Researchers combined many layers of molecular data (metabolites, gene activity, proteins, and chemical tags on proteins) from rat calf muscle after 1-8 weeks of endurance training, comparing males and females. Gene and protein responses were mostly similar between sexes, but chemical modifications differed: females showed less oxidation of mitochondrial proteins and more oxidation of glycolytic proteins than males, hinting at sex-specific handling of exercise-related oxidative stress.
Abstract (source)

Exercise training confers broad health benefits, yet molecular regulators of skeletal muscle adaptation, particularly sex-specific mechanisms, remain incompletely understood. Integrating new and previously published multi-omics data from the molecular transducers of physical activity consortium (MoTrPAC), we characterized metabolomic, epigenomic, transcriptomic, proteomic, and post-translational modification (PTM) responses to 1-8 weeks of endurance exercise training in male and female rat gastrocnemius. While transcriptomic and proteomic responses were largely sex-concordant, there were distinct sex-specific training-induced PTM signatures, particularly in the redox proteome. Females exhibited decreased mitochondrial protein cysteine oxidation alongside increased oxidation of glycolytic proteins relative to males, suggesting sex-biased subcellular reactive oxygen species (ROS) dynamics. Multi-omic factor analysis (MOFA) identified coordinated sex-concordant molecular programs and further supported female-specific mechanisms of redox buffering with training. Together, these

Findings: indicate that sex-specific skeletal muscle exercise adaptations are particularly evident at the PTM level in rats, and identify future avenues for precision exercise health and medicine.

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