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串联顺应性对肌肉和运动性能的增强作用:一项机制模拟研究。

Enhancement of muscle and locomotor performance by a series compliance: A mechanistic simulation study.

作者信息

Robertson Jason W, Struthers Colin N, Syme Douglas A

机构信息

Department of Biological Sciences, University of Calgary, Calgary, Alberta, Canada.

出版信息

PLoS One. 2018 Jan 25;13(1):e0191828. doi: 10.1371/journal.pone.0191828. eCollection 2018.

Abstract

The objective was to better understand how a series compliance alters contraction kinetics and power output of muscle to enhance the work done on a load. A mathematical model was created in which a gravitational point load was connected via a linear spring to a muscle (based on the contractile properties of the sartorius of leopard frogs, Rana pipiens). The model explored the effects of load mass, tendon compliance, and delay between onset of contraction and release of the load (catch) on lift height and power output as measures of performance. Series compliance resulted in increased lift height over a relatively narrow range of compliances, and the effect was quite modest without an imposed catch mechanism unless the load was unrealistically small. Peak power of the muscle-tendon complex could be augmented up to four times that produced with a muscle alone, however, lift height was not predicted by peak power. Rather, lift height was improved as a result of the compliance synchronizing the time courses of muscle force and shortening velocity, in particular by stabilizing shortening velocity such that muscle power was sustained rather than rising and immediately falling. With a catch mechanism, enhanced performance resulted largely from energy storage in the compliance during the period of catch, rather than increased time for muscle activation before movement commenced. However, series compliance introduced a trade-off between work done before versus after release of the catch. Thus, the ability of tendons to enhance locomotor performance (i.e. increase the work done by muscle) appears dependent not only on their established role in storing energy and increasing power, but also on their ability to modulate the kinetics of muscle contraction such that power is sustained over more of the contraction, and maximizing the balance of work done before versus after release of a catch.

摘要

目的是更好地理解串联顺应性如何改变肌肉的收缩动力学和功率输出,以增强对负荷所做的功。构建了一个数学模型,其中重力点负荷通过线性弹簧与一块肌肉相连(基于豹蛙,即北美豹蛙缝匠肌的收缩特性)。该模型探讨了负荷质量、肌腱顺应性以及收缩开始与负荷释放(捕捉)之间的延迟对提升高度和功率输出的影响,以此作为性能指标。在相对较窄的顺应性范围内,串联顺应性导致提升高度增加,并且在没有施加捕捉机制的情况下,这种效果相当有限,除非负荷小到不切实际。然而,肌肉 - 肌腱复合体的峰值功率可比仅由肌肉产生的功率增加四倍,不过,提升高度并非由峰值功率预测。相反,提升高度得以改善是因为顺应性使肌肉力量和缩短速度的时间进程同步,特别是通过稳定缩短速度,使得肌肉功率得以持续,而非先上升然后立即下降。有了捕捉机制,性能提升很大程度上源于捕捉期间顺应性中的能量储存,而非运动开始前肌肉激活时间的增加。然而,串联顺应性在捕捉释放之前和之后所做的功之间引入了一种权衡。因此,肌腱增强运动性能(即增加肌肉所做的功)的能力似乎不仅取决于它们在储存能量和增加功率方面已确立的作用,还取决于它们调节肌肉收缩动力学的能力,以便功率在更多的收缩过程中得以持续,并使捕捉释放之前和之后所做功的平衡最大化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5404/5784993/5c5ed8a144e4/pone.0191828.g001.jpg

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