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The cross-bridge cycle and skeletal muscle fatigue

期刊

JOURNAL OF APPLIED PHYSIOLOGY
卷 104, 期 2, 页码 551-558

出版社

AMER PHYSIOLOGICAL SOC
DOI: 10.1152/japplphysiol.01200.2007

关键词

low pH; high inorganic phosphate; contractile properties

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The functional correlates of fatigue observed in both animals and humans during exercise include a decline in peak force (P-o), maximal velocity, and peak power. Establishing the extent to which these deleterious functional changes result from direct effects on the myofilaments is facilitated through understanding the molecular mechanisms of the cross-bridge cycle. With actin-myosin binding, the cross-bridge transitions from a weakly bound low-force state to a strongly bound high-force state. Low pH reduces the number of high-force cross bridges in fast fibers, and the force per cross bridge in both fast and slow fibers. The former is thought to involve a direct inhibition of the forward rate constant for transition to the strong cross-bridge state. In contrast, inorganic phosphate (P-i) is thought to reduce P-o by accelerating the reversal of this step. Both H+ and P-i decrease myofibrillar Ca2+ sensitivity. This effect is particularly important as the amplitude of the Ca2+ transient falls with fatigue. The inhibitory effects of low pH and high P-i on P-o are reduced as temperature increases from 10 to 30 degrees C. However, the H+-induced depression of peak power in the slow fiber type, and P-i inhibition of myofibrillar Ca2+ sensitivity in slow and fast fibers, are greater at high compared with low temperature. Thus the depressive effects of H+ and P-i at in vivo temperatures cannot easily be predicted from data collected below 25 degrees C. In vitro, reactive oxygen species reduce myofibrillar Ca2+ sensitivity; however, the importance of this mechanism during in vivo exercise is unknown.

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