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Intensity of activation and timing of deactivation modulate elastic energy storage and release in a pennate muscle and account for gait-specific initiation of limb protraction in the horse

机译:激活的强度和失活的时机调节着弹性能量在半圆形肌中的存储和释放,并解释了步态特异性启动马的四肢前伸

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摘要

The equine biceps brachii (biceps) initiates rapid limb protraction through a catapult mechanism. Elastic strain energy is slowly stored in an internal tendon and is then rapidly released to protract the forelimb. The muscle fibres are short, have little scope for length change and can therefore only shorten slowly compared with the speed at which the whole muscle must shorten, which makes them poor candidates for driving rapid limb protraction. We suggest that the muscle fibres in the biceps act to modulate the elastic energy output of the muscle–tendon unit (MTU) to meet the demands of locomotion under different conditions. We hypothesise that more elastic strain energy is stored and released from the biceps MTU during higher speed locomotion to accommodate the increase in energy required to protract the limb and that this can be achieved by varying the length change and activation conditions of the muscle. We examined the work performed by the biceps during trot and canter using an inverse dynamics analysis (IDA). We then used excised biceps muscles to determine how much work could be performed by the muscle in active and passive stretch–shorten cycles. A muscle model was developed to investigate the influence of changes in activation parameters on energy storage and energy return from the biceps MTU. Increased biceps MTU length change and increased work performed by the biceps MTU were found at canter compared with at trot. More work was performed by the ex vivo biceps MTU following activation of the muscle and by increasing muscle length change. However, the ratio of active to passive work diminished with increasing length change. The muscle model demonstrated that duration and timing of activation during stretch–shorten cycles could modulate the elastic energy storage and return from the biceps. We conclude that the equine biceps MTU acts as a tuneable spring and the contractile component functions to modulate the energy required for rapid forelimb protraction at different speeds.
机译:马二头肌肱(二头肌)通过弹射器机制开始快速的四肢前伸。弹性应变能缓慢地存储在内部肌腱中,然后迅速释放以延长前肢。肌肉纤维很短,长度变化的空间很小,因此与整个肌肉必须缩短的速度相比只能缓慢缩短,这使它们不适合驱动快速的四肢伸直。我们建议二头肌中的肌纤维起调节肌腱单位(MTU)的弹性能输出的作用,以满足不同条件下的运动需求。我们假设在较高速度的运动过程中,可以存储更多的弹性应变能并从二头肌MTU中释放出来,以适应使肢体延长所需的能量增加,并且可以通过更改肌肉的长度变化和激活条件来实现。我们使用反向动力学分析(IDA)检查了二头肌在小跑和慢跑期间所做的工作。然后,我们使用切除的二头肌肌肉来确定在主动和被动拉伸-缩短周期中,肌肉可以执行多少工作。开发了一个肌肉模型来研究激活参数的变化对二头肌MTU的能量存储和能量返回的影响。与在小跑时相比,在慢跑时发现二头肌MTU长度变化增加,并且二头肌MTU执行的工作增加。激活肌肉后,通过增加肱二头肌的MTU并增加肌肉的长度变化来进行更多的工作。但是,随着长度变化的增加,主动功与被动功的比值减小了。肌肉模型表明,在拉伸-缩短周期内激活的持续时间和时间可以调节弹性能量的储存并从二头肌中恢复。我们得出的结论是,马二头肌MTU充当可调节弹簧,而收缩组件的作用是调节以不同速度快速前肢前伸所需的能量。

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