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Predictions of the time course of force and power output by dogfish white muscle fibres during brief tetani

机译:短破伤风期间白dog白肌纤维输出力和动力的时间过程的预测

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摘要

The aim of this study was to identify the principal factors that determine the time course of force and power output by muscle during patterns of stimulation and movement similar to those during fish swimming, Fully activated, white muscle fibres isolated from dogfish Scyliorhinus canicula were used to characterize the force-velocity relationship of the contractile component (CC) and the stress-strain relationship of the passive, elastic component (SEC) in series with the CC. A simple model of the time course of crossbridge activation during brief contractions was devised, Using the mechanical properties of the CC and SEC and the activation time course, force and power were predicted for brief contractions with constant-velocity movement and also for brief contractions starting at various times during sinusoidal movement. The predicted force and power were compared with observations for these patterns of stimulation and movement, The predictions matched the observations well for the period during stimulation, Matching of force was much less good for some specific conditions during relaxation, the period during which force persists after the end of stimulation, If either the slow rise of activation or the SEC was omitted from the calculation, the predictions were poor, even during stimulation, Additional factors which may influence force are discussed, These include the after-effects of shortening and stretch, the variation of force during constant-velocity stretch and non-uniform behaviour within the muscle. [References: 23]
机译:这项研究的目的是确定主要因素,这些因素决定了在刺激和运动模式下,肌肉的力量和动力输出的时程,与鱼类游泳过程中的相似,使用了从狗鱼Scyliorhinus canicula分离出的完全活化的白肌纤维来进行运动。表征收缩分量(CC)的力-速度关系和与CC串联的被动,弹性分量(SEC)的应力-应变关系。设计了一个简单的短暂收缩过程中跨桥激活时间过程的简单模型,利用CC和SEC的力学特性以及激活时间过程,预测了具有恒定速度运动的短暂收缩以及开始短暂收缩时的力和功率在正弦运动期间的各个时间。将预测的力量和力量与这些刺激和运动模式的观察结果进行比较,这些预测与刺激期间的观察结果非常吻合,对于放松期间某些特定条件的力量匹配不太好,在此期间力量持续存在在刺激结束时,如果从计算中忽略了激活的缓慢上升或SEC,则即使在刺激过程中预测也很差,讨论了可能影响力的其他因素,包括缩短和拉伸的后效应,恒速拉伸过程中力的变化以及肌肉内行为不均匀的情况。 [参考:23]

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