Moderate-Intensity Exercise Enhances Mitochondrial Biogenesis Markers in the Skeletal Muscle of a Mouse Model Affected by Diet-Induced Obesity

Author:

Jun Lauren1ORCID,Knight Emily1ORCID,Broderick Tom L.2,Al-Nakkash Layla2ORCID,Tobin Brielle3ORCID,Geetha Thangiah14ORCID,Babu Jeganathan Ramesh14

Affiliation:

1. Department of Nutritional Sciences, Auburn University, Auburn, AL 36849, USA

2. Department of Physiology, College of Graduate Studies, Midwestern University, Glendale, AZ 85308, USA

3. The Arizona College of Osteopathic Medicine, Midwestern University, Glendale, AZ 85308, USA

4. Boshell Metabolic Diseases and Diabetes Program, Auburn University, Auburn, AL 36849, USA

Abstract

Skeletal muscle is composed of bundles of muscle fibers with distinctive characteristics. Oxidative muscle fiber types contain higher mitochondrial content, relying primarily on oxidative phosphorylation for ATP generation. Notably, as a result of obesity, or following prolonged exposure to a high-fat diet, skeletal muscle undergoes a shift in fiber type toward a glycolytic type. Mitochondria are highly dynamic organelles, constantly undergoing mitochondrial biogenesis and dynamic processes. Our study aims to explore the impact of obesity on skeletal muscle mitochondrial biogenesis and dynamics and also ascertain whether the skeletal muscle fiber type shift occurs from the aberrant mitochondrial machinery. Furthermore, we investigated the impact of exercise in preserving the oxidative muscle fiber types despite obesity. Mice were subjected to a normal standard chow and water or high-fat diet with sugar water (HFS) with or without exercise training. After 12 weeks of treatment, the HFS diet resulted in a noteworthy reduction in the markers of mitochondrial content, which was recovered by exercise training. Furthermore, higher mitochondrial biogenesis markers were observed in the exercised group with a subsequent increase in the mitochondrial fission marker. In conclusion, these findings imply a beneficial impact of moderate-intensity exercise on the preservation of oxidative capacity in the muscle of obese mouse models.

Funder

Alabama Agricultural Experimental Station

Hatch/Multistate Funding Program to JRB

Midwestern Alzheimer’s Association Consortium funding to LAN and TLB

Presidential Graduate Research Fellowship (PGRF) awarded to LJ by Auburn University

Publisher

MDPI AG

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