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Increase in muscle power is associated with myofibrillar ATPase adaptations during resistance training

Latest updated: May 26, 2020

Antony G. Philippe, Corinne Lionne, Anthony M. J. Sanchez, Allan F. Pagano, Robin Candau

Experimental Physiology, Volume 104, Issue, 8, Pages 1274-1285

 

Abstract

Skeletal muscle shows a remarkable plasticity that permits functional adaptations in response to different stimulations. To date, modifications of the proportions of myosin heavy chain (MHC) isoforms and increases in fibre size are considered to be the main factors providing sarcomeric plasticity in response to exercise training. In this study, we investigated the effects of a resistance training protocol on the myofibrillar ATPase (m‐ATPase) cycle, muscle performance (power output) and MHC gene expression. For this purpose, 8‐week‐old Wistar Han rats were subjected to 4 weeks of resistance training, with five sessions per week. Muscle samples of flexor digitorum profundus (FDP), biceps and deltoid were collected and subjected to RT‐qPCR analyses and assessment of m‐ATPase activity with rapid flow quench apparatus. Training led to a significant increase in muscle mass, except for the biceps, and in total mechanical power output (+135.7%, P < 0.001). A shift towards an intermediate fibre type (i.e. MHC2x‐to‐MHC2a isoform transition) was also observed in biceps and FDP but not in the deltoid muscle. Importantly, rapid flow quench experiments revealed an enhancement of the m‐ATPase activity during contraction at maximal velocity (kF) in the three muscles, with a more marked effect in FDP (+242%, P < 0.001). Data fitting revealed that the rate constant of liberation of ATP hydrolysis products (k3) appears to be the main factor influencing the increase in m‐ATPase activity. In conclusion, the data showed that, in addition to classically observed changes in MHC isoform content and fibre hypertrophy, m‐ATPase activity is enhanced during resistance training and might contribute significantly to performance gains.

 

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QFM-4000 quench flow physiology myosin ATPase kinetics