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On the Shape of the Force-Velocity Relationship in Skeletal Muscles: The Linear the Hyperbolic and the Double-Hyperbolic

机译:骨骼肌中力-速度关系的形状:线性双曲线和双双曲线

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摘要

The shape of the force-velocity (F-V) relationship has important implications for different aspects of muscle physiology, such as muscle efficiency and fatigue, the understanding of the pathophysiology of several myopathies or the mechanisms of muscle contraction per se, and may be of relevance for other fields, such as the development of robotics and prosthetic applications featuring natural muscle-like properties. However, different opinions regarding the shape of the F-V relationship and the underlying mechanisms exist in the literature. In this review, we summarize relevant evidence on the shape of the F-V relationship obtained over the last century. Studies performed at multiple scales ranging from the sarcomere to the organism level have described the concentric F-V relationship as linear, hyperbolic or double-hyperbolic. While the F-V relationship has most frequently been described as a rectangular hyperbola, a large number of studies have found deviations from the hyperbolic function at both ends of the F-V relation. Indeed, current evidence suggests that the F-V relation in skeletal muscles follows a double-hyperbolic pattern, with a breakpoint located at very high forces/low velocities, which may be a direct consequence of the kinetic properties of myofilament cross-bridge formation. Deviations at low forces/high velocities, by contrast, may be related to a recently discovered, calcium-independent regulatory mechanism of muscle contraction, which may also explain the low metabolic cost of very fast muscle shortening contractions. Controversial results have also been reported regarding the eccentric F-V relationship, with studies in prepared muscle specimens suggesting that maximum eccentric force is substantially greater than isometric force, whereas in vivo studies in humans show only a modest increase, no change, or even a decrease in force in lengthening contractions. This review discusses possible reasons reported in the literature for these discrepant findings, including the testing procedures (familiarization, pre-load condition, and temperature) and a potential neural inhibition at higher lengthening velocities. Finally, some unresolved questions and recommendations for F-V testing in humans are reported at the end of this document.
机译:力速(FV)关系的形状对肌肉生理学的各个方面都有重要意义,例如肌肉效率和疲劳,对几种肌病的病理生理学的理解或肌肉收缩机制本身,并且可能是相关的其他领域,例如机器人技术的开发和具有天然肌肉样特性的假肢应用。然而,关于F-V关系的形状和潜在机制的不同观点在文献中存在。在这篇评论中,我们总结了有关上个世纪F-V关系的形状的相关证据。从肌小节到生物体水平的多个尺度进行的研究已将同心F-V关系描述为线性,双曲线或双双曲线。尽管F-V关系最常被描述为矩形双曲线,但大量研究发现,在F-V关系的两端都偏离了双曲线函数。确实,当前证据表明骨骼肌中的F-V关系遵循双双曲线模式,其断点位于极高的力/低的速度下,这可能是肌丝横桥形成动力学特性的直接结果。相比之下,低力量/高速度时的偏差可能与最近发现的钙依赖性肌肉收缩调节机制有关,这也可以解释非常快的肌肉缩短收缩的低代谢成本。关于偏心FV关系也有争议的报道,在准备好的肌肉样本中进行的研究表明,最大偏心力明显大于等轴测力,而人体的体内研究表明,偏心FV仅适度增加,没有变化甚至降低。延长收缩力。这篇综述讨论了文献中报道的这些差异性发现的可能原因,包括测试程序(熟悉程度,预加载条件和温度)以及更高延伸速度下的潜在神经抑制作用。最后,本文结尾部分报告了一些尚未解决的人类F-V测试问题和建议。

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