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首页> 外文期刊>The Journal of Physiology >Phosphate increase during fatigue affects crossbridge kinetics in intact mouse muscle at physiological temperature
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Phosphate increase during fatigue affects crossbridge kinetics in intact mouse muscle at physiological temperature

机译:疲劳期间的磷酸盐增加会影响生理温度的完整小鼠肌肉中的横梁动力学

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摘要

Actomyosin ATP hydrolysis during muscle contraction releases inorganic phosphate, increasing [P-i] in the myoplasm. Experiments in skinned fibres at low temperature (10-12 degrees C) have shown that [P-i] increase depresses isometric force and alters the kinetics of actomyosin interaction. However, the effects of P-i decrease with temperature and this raises the question of the role of P-i under physiological conditions. The present experiments were performed to investigate this point. Intact fibre bundles isolated from the flexor digitorum brevis of C57BL/6 mice were stimulated with a series of tetanic contractions at 1.5s intervals at 33 degrees C. As show previously the most significant change induced by a bout of contractile activity similar to the initial 10 tetani of the series was an increase of [P-i] without significant Ca2+ or pH changes. Measurements of force, stiffness and responses to fast stretches and releases were therefore made on the 10th tetanus of the series and compared with control. We found that (i) tetanic force at the 10th tetanus was approximate to 20% smaller than control without a significant decrease of crossbridge stiffness; and (ii) the force recovery following quick stretches and releases was faster than in control. These results indicate that at physiological temperature the increase of [P-i] occurring during early fatigue reduces tetanic force mainly by depressing the individual crossbridge force and accelerating crossbridge kinetics.
机译:肌肉收缩期间的Actomyosin ATP水解释放无机磷酸盐,在骨质中增加[P-I]。在低温(10-12℃)下皮肤纤维的实验表明,[P-I]增加抑制等距力,并改变ACTOMOSIN相互作用的动力学。然而,P-I的影响随温度降低,这提出了P-I在生理条件下的作用问题。进行本实验以研究这一点。从C57BL / 6小鼠的屈肌点分离的完整纤维束与33摄氏度的一系列滴定型收缩刺激了一系列滴定型收缩。如在初始的相似与最初10的收缩活动所引起的最显着变化该系列的Tetani是没有显着的Ca2 +或pH变化的增加的[pi]。因此,对该系列的第10段进行了对快速伸展和释放的力,刚度和释放的反应的测量并与对照进行比较。我们发现(i)第10次破伤风的滴动力比控制刚度显着降低的控制近20%; (ii)快速伸展和释放后的力恢复比控制更快。这些结果表明,在生理温度下,早期疲劳期间发生的[P-i]的增加主要通过抑制各个跨界力和加速跨桥动力学来减少滴答力。

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