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横桥弹性对力-速度关系及肌肉功率输出的影响。

Effects of cross-bridge compliance on the force-velocity relationship and muscle power output.

作者信息

Fenwick Axel J, Wood Alexander M, Tanner Bertrand C W

机构信息

Department of Integrative Physiology and Neuroscience, Washington State University, Pullman, Washington, United States of America.

出版信息

PLoS One. 2017 Dec 28;12(12):e0190335. doi: 10.1371/journal.pone.0190335. eCollection 2017.

Abstract

Muscles produce force and power by utilizing chemical energy through ATP hydrolysis. During concentric contractions (shortening), muscles generate less force compared to isometric contractions, but consume greater amounts of energy as shortening velocity increases. Conversely, more force is generated and less energy is consumed during eccentric muscle contractions (lengthening). This relationship between force, energy use, and the velocity of contraction has important implications for understanding muscle efficiency, but the molecular mechanisms underlying this behavior remain poorly understood. Here we used spatially-explicit, multi-filament models of Ca2+-regulated force production within a half-sarcomere to simulate how force production, energy utilization, and the number of bound cross-bridges are affected by dynamic changes in sarcomere length. These computational simulations show that cross-bridge binding increased during slow-velocity concentric and eccentric contractions, compared to isometric contractions. Over the full ranges of velocities that we simulated, cross-bridge cycling and energy utilization (i.e. ATPase rates) increased during shortening, and decreased during lengthening. These findings are consistent with the Fenn effect, but arise from a complicated relationship between velocity-dependent cross-bridge recruitment and cross-bridge cycling kinetics. We also investigated how force production, power output, and energy utilization varied with cross-bridge and myofilament compliance, which is impossible to address under typical experimental conditions. These important simulations show that increasing cross-bridge compliance resulted in greater cross-bridge binding and ATPase activity, but less force was generated per cross-bridge and throughout the sarcomere. These data indicate that the efficiency of force production decreases in a velocity-dependent manner, and that this behavior is sensitive to cross-bridge compliance. In contrast, significant effects of myofilament compliance on force production were only observed during isometric contractions, suggesting that changes in myofilament compliance may not influence power output during non-isometric contractions as greatly as changes in cross-bridge compliance. These findings advance our understanding of how cross-bridge and myofilament properties underlie velocity-dependent changes in contractile efficiency during muscle movement.

摘要

肌肉通过ATP水解利用化学能产生力量和功率。在向心收缩(缩短)过程中,与等长收缩相比,肌肉产生的力量较小,但随着缩短速度的增加,能量消耗会增加。相反,在离心肌肉收缩(拉长)过程中会产生更大的力量且消耗更少的能量。力量、能量使用和收缩速度之间的这种关系对于理解肌肉效率具有重要意义,但这种行为背后的分子机制仍知之甚少。在这里,我们使用半肌节内Ca2+调节的力量产生的空间明确的多丝模型,来模拟肌节长度的动态变化如何影响力量产生、能量利用以及结合的横桥数量。这些计算模拟表明,与等长收缩相比,在低速向心和离心收缩过程中横桥结合增加。在我们模拟的整个速度范围内,横桥循环和能量利用(即ATP酶速率)在缩短过程中增加,在拉长过程中减少。这些发现与芬恩效应一致,但源于速度依赖性横桥募集和横桥循环动力学之间的复杂关系。我们还研究了力量产生、功率输出和能量利用如何随横桥和肌丝顺应性而变化,这在典型实验条件下是无法解决的。这些重要的模拟表明,增加横桥顺应性会导致更大的横桥结合和ATP酶活性,但每个横桥以及整个肌节产生的力量会更小。这些数据表明,力量产生的效率以速度依赖的方式降低,并且这种行为对横桥顺应性敏感。相比之下,仅在等长收缩过程中观察到肌丝顺应性对力量产生有显著影响,这表明在非等长收缩过程中,肌丝顺应性的变化对功率输出的影响可能不如横桥顺应性的变化那么大。这些发现推进了我们对横桥和肌丝特性如何构成肌肉运动过程中收缩效率的速度依赖性变化基础的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e8c2/5746261/1946197e0705/pone.0190335.g001.jpg

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