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. 2015 May 15;118(10):1240-9.
doi: 10.1152/japplphysiol.00027.2015. Epub 2015 Mar 12.

Possible mechanisms underlying slow component of V̇O2 on-kinetics in skeletal muscle

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Possible mechanisms underlying slow component of V̇O2 on-kinetics in skeletal muscle

Bernard Korzeniewski et al. J Appl Physiol (1985). .
Free article

Abstract

A computer model of a skeletal muscle bioenergetic system is used to study the background of the slow component of oxygen consumption V̇O2 on-kinetics in skeletal muscle. Two possible mechanisms are analyzed: inhibition of ATP production by anaerobic glycolysis by progressive cytosol acidification (together with a slow decrease in ATP supply by creatine kinase) and gradual increase of ATP usage during exercise of constant power output. It is demonstrated that the former novel mechanism is potent to generate the slow component. The latter mechanism further increases the size of the slow component; it also moderately decreases metabolite stability and has a small impact on muscle pH. An increase in anaerobic glycolysis intensity increases the slow component, elevates cytosol acidification during exercise, and decreases phosphocreatine and Pi stability, although slightly increases ADP stability. A decrease in the P/O ratio (ATP molecules/O2 molecules) during exercise cannot also be excluded as a relevant mechanism, although this issue requires further study. It is postulated that both the progressive inhibition of anaerobic glycolysis by accumulating protons (together with a slow decrease of the net creatine kinase reaction rate) and gradual increase of ATP usage during exercise, and perhaps a decrease in P/O, contribute to the generation of the slow component of the V̇O2 on-kinetics in skeletal muscle.

Keywords: anaerobic glycolysis; computer model; cytosol acidification; oxidative phosphorylation; rest-to-work transition.

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