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肌肉激活对肌肉力学性能解读的重要性。

The importance of muscle activation on the interpretation of muscle mechanical performance.

机构信息

Department of Musculoskeletal Ageing Science, University of Liverpool, The William Henry Duncan Building, 6 West Derby Street, Liverpool L7 8TX, UK.

School of Biomedical Sciences , University of Leeds, Leeds LS2 9JT, UK.

出版信息

J Exp Biol. 2024 Nov 1;227(21). doi: 10.1242/jeb.248051. Epub 2024 Nov 8.

Abstract

The work loop technique was developed to assess muscle performance during cyclical length changes with phasic activation, simulating the in vivo conditions of many muscles, particularly during locomotion. To estimate muscle function in vivo, the standard approach involves subjecting a muscle to length trajectories and activation timings derived from in vivo measurements, whilst simultaneously measuring force. However, the stimulation paradigm typically used, supramaximal, 'square-wave' stimulation, does not accurately reflect the graded intensity of activation observed in vivo. While the importance of the timing and duration of stimulation within the cycle on estimates of muscle performance has long been established, the importance of graded muscle activation has not been investigated. In this study, we investigated how the activation pattern affects muscle performance by comparing square-wave, supramaximal activation with a graded in vivo activation pattern. First, we used in vivo electromyography-derived activation patterns and fibre strains from the rabbit digastric muscle during mastication and replayed them in situ. Second, we used Hill-type musculoskeletal model-derived activation patterns and fibre strains in a trotting mouse, replayed ex vivo in the soleus (SOL) and extensor digitorum longus (EDL) muscles. In the rabbit digastric muscle, square-wave activation led to an 8-fold higher estimate of net power, compared with the in vivo graded activation pattern. Similarly, in the mouse SOL and EDL, supramaximal, square-wave activation resulted in significantly greater positive and negative muscle work. These findings highlight that realistic interpretations of in vivo muscle function rely upon more accurate representations of muscle activation intensity.

摘要

工作循环技术是为了评估肌肉在周期性长度变化和相位激活时的性能而开发的,模拟了许多肌肉的体内条件,特别是在运动过程中。为了估计体内肌肉的功能,标准方法涉及使肌肉经受来自体内测量的长度轨迹和激活定时,同时测量力。然而,通常使用的刺激范式,即超最大的“方波”刺激,不能准确反映体内观察到的激活强度的分级。虽然在周期内刺激的定时和持续时间对肌肉性能的估计的重要性早已确立,但分级激活对肌肉性能的影响尚未得到研究。在这项研究中,我们通过比较方波、超最大激活与体内分级激活模式来研究激活模式如何影响肌肉性能。首先,我们使用来自兔子咀嚼肌的体内肌电图衍生的激活模式和纤维应变,并在原位回放它们。其次,我们使用 Hill 型肌肉骨骼模型衍生的激活模式和纤维应变在奔跑的小鼠中回放,在体内的比目鱼肌(SOL)和趾长伸肌(EDL)肌肉中回放。在兔子咀嚼肌中,与体内分级激活模式相比,方波激活导致净功率的估计值高出 8 倍。同样,在小鼠的 SOL 和 EDL 中,超最大的方波激活导致阳性和阴性肌肉工作显著增加。这些发现强调了更准确地表示肌肉激活强度对于真实解释体内肌肉功能的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9eec/11574351/a0d2eea07fa2/jexbio-227-248051-g1.jpg

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