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In‐situ measurements of tensile forces in the tibialis anterior tendon of the rat in concentric isometric and resisted co‐contractions

机译:原位测量大鼠胫骨前肌腱在同心等距和抵抗性共收缩中的张力

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摘要

Tensile‐force transmitted by the tibialis anterior (TA) tendon of 11 anesthetized adult male Wistar rats (body‐mass: 360.6 ± 66.3 g) was measured in‐situ within the intact biomechanical system of the hind‐limb using a novel miniature in‐line load‐cell. The aim was to demonstrate the dependence of the loading‐profile experienced by the muscle, on stimulation‐frequency and the resistance to shortening in a group of control‐animals. Data from these acute‐experiments shows the type of loading achievable by means of implantable electrical stimulators activating agonists or agonist/antagonist groups of muscles during programmed resistance‐training in freely moving healthy subjects. Force‐responses to electrical stimulation of the common peroneal nerve for single pulses and short bursts were measured in unloaded and isometric contractions. A less time‐consuming approach to measure the force‐frequency relationship was investigated by applying single bursts containing a series of escalating stimulus‐frequencies. We also measured the range of loading attainable by programmed co‐contraction of the TA‐muscle with the plantar‐flexor muscles for various combinations of stimulation‐frequencies. The maximal average peak‐force of single twitches was 179% higher for isometric than for unloaded twitches. Average maximal isometric tetanic‐force per gramme muscle‐mass was 16.5 ± 3.0 N g−1, which agrees well with other studies. The standard and time‐saving approaches to measure the force‐frequency relationship gave similar results. Plantar‐flexor co‐activation produced greatly increased tension in the TA‐tendon, similar to isometric contractions. Our results suggest that unloaded contractions may not be adequate for studies of resistance‐training. Plantar‐flexor co‐contractions produced considerably higher force‐levels that may be better suited to investigate the physiology and cell‐biology of resistance‐training in rodents.
机译:在11只麻醉的成年雄性Wistar大鼠(身体质量:360.6±66.3 g)的胫前肌(TA)肌腱上传递的拉伸力是在后肢完整的生物力学系统中采用新型微型微型技术原位测量的。线称重传感器。目的是证明一组对照组动物的肌肉承受的负荷曲线对刺激频率和抗短缩性的依赖性。这些急性实验的数据表明,通过可植入的电刺激器,可以在自由移动的健康受试者中进行有计划的抵抗训练时,激活激动剂或激动剂/拮抗剂组的肌肉,从而达到可承受的负荷类型。在无负荷和等距收缩中测量单脉冲和短脉冲对腓总神经电刺激的力响应。通过应用包含一系列不断升级的刺激频率的单脉冲,研究了一种用于测量力-频率关系的耗时较少的方法。我们还测量了针对刺激频率的各种组合,通过TA肌肉与plant屈肌肉的程序化共收缩可获得的负荷范围。等距的单个抽搐的最大平均峰值力比未加载的抽搐高179%。每克肌肉质量的平均最大等张张肌力为16.5±3.0 N g -1 ,与其他研究相吻合。测量力-频率关系的标准方法和省时方法得出了相似的结果。 is屈联合激活使TA腱的张力大大增加,类似于等距收缩。我们的结果表明,无负荷的收缩可能不足以进行阻力训练研究。屈联合收缩产生的力水平要高得多,可能更适合研究啮齿动物抵抗训练的生理学和细胞生物学。

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