Stuart has got the PoWeR! Skeletal muscle adaptations to a novel heavy progressive weighted wheel running exercise model in C57BL/6 mice

Author:

Koopmans Pieter J.123,Williams‐Frey Therin D.14,Zwetsloot Kevin A.124ORCID

Affiliation:

1. Integrative Muscle Physiology Laboratory Appalachian State University Boone North Carolina USA

2. Department of Public Health and Exercise Science Appalachian State University Boone North Carolina USA

3. Cell and Molecular Biology Program University of Arkansas Fayetteville Arkansas USA

4. Department of Biology Appalachian State University Boone North Carolina USA

Abstract

AbstractMurine exercise models are developed to study the molecular and cellular mechanisms regulating muscle mass. A progressive weighted wheel running model, named ‘PoWeR’, was previously developed to serve as a more translatable alternative to involuntary resistance‐type exercise models in rodents, such as synergist ablation. However, mice still run great distances despite the added resistance as evidenced by a large glycolytic‐to‐oxidative shift in muscle fibre type. Thus, PoWeR reflects a blended resistance/endurance model. In an attempt to bias PoWeR further towards resistance‐type exercise, we developed a novel heavy PoWeR model (hPoWeR) utilizing higher wheel loads (max of 12.5 g vs 6 g). Adult male C57BL/6 mice voluntarily performed an 8‐week progressive loading protocol (PoWeR or hPoWeR). Running distance peaked at ∼5–6 km day−1 in both treatments and was maintained by PoWeR mice, but declined in the hPoWeR mice as load increased beyond 7.5 g. Peak isometric force of the gastrocnemius–soleus–plantaris complex tended to increase in wheel running treatments. Soleus mass increased by 19% and 24% in PoWeR and hPoWeR treatments, respectively, and plantaris fibre cross‐sectional area was greater in hPoWeR, compared to PoWeR. There were fewer glycolytic and more oxidative fibres in the soleus and plantaris muscles in the PoWeR treatment, but not hPoWeR. Collectively, these data suggest hPoWeR may modestly alter skeletal muscle supporting the aim of better reflecting typical resistance training adaptations, in line with decreased running volume and exposure to higher resistance. Regardless, PoWeR remains an effective hypertrophic concurrent training model in mice.

Publisher

Wiley

Subject

Physiology,Physiology (medical),Nutrition and Dietetics,Physiology,Physiology (medical),Nutrition and Dietetics

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