Exercise-associated microbial metabolites prevent skeletal muscle atrophy in adult female mice

B Benjamin I. Burke T Taylor R. Valentino A Ahmed Ismaeel S Salim S. El-Amouri J Jensen Goh L Logan N. Scott B Bonnie J. Walton J Jai K. Joshi C Cecily R. Wood A Abigail Burrows-Franco J John B. May L Lance A. Johnson (Department of Physiology, University of Kentucky) M Michael D. Flythe Y Yuan Wen J John J. McCarthy

Abstract

Abstract We previously reported that skeletal muscle adaptation to regular exercise requires a healthy gut microbiome, contributing to growing evidence that some exercise benefits are mediated by microbiome-derived metabolites. Here, to identify such exercise-associated microbial metabolites, we transfer cecal contents from exercise-trained female donor mice into exercise-naïve female recipient mice undergoing unilateral hindlimb immobilization. Recipients of cecal material from exercise-trained donors exhibit less muscle atrophy compared with those receiving transfers from sedentary donors. Untargeted metabolomics reveal metabolites enriched in cecal content, serum, and muscle of recipients from exercise-trained donors, consistent with microbial origin. Oral administration of two such metabolites (pipecolic acid and succinate) attenuates muscle atrophy and preserves muscle function in exercise-naïve mice, potentially by enhancing cellular energy status and translational capacity. These findings further define the gut microbiome-skeletal muscle axis and provide evidence that exercise-associated microbial metabolites serve as a novel class of exercise mimetics for treating conditions responsive to physical activity.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 10, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (15)

B

Benjamin I. Burke

T

Taylor R. Valentino

A

Ahmed Ismaeel

S

Salim S. El-Amouri

J

Jensen Goh

L

Logan N. Scott

B

Bonnie J. Walton

J

Jai K. Joshi

C

Cecily R. Wood

A

Abigail Burrows-Franco

J

John B. May

L

Lance A. Johnson

Department of Physiology, University of Kentucky

M

Michael D. Flythe

Y

Yuan Wen

J

John J. McCarthy