首页> 外文期刊>Journal of electromyography and kinesiology: Official journal of the International Society of Electrophysiological Kinesiology >Individual muscle contributions to knee joint impedance following a sudden perturbation: An in vivo inverted pendulum model
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Individual muscle contributions to knee joint impedance following a sudden perturbation: An in vivo inverted pendulum model

机译:突然发生扰动后,个别肌肉对膝关节阻抗的贡献:体内倒立摆模型

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Previous research has suggested that muscle forces, generated by reflexes, contribute to joint stability prior to the more coordinated voluntary muscle forces. The purpose of the current study was to quantify the behaviour of the leg muscles, through the calculation of individual muscle contributions to joint rotational impedance (MJRI), with a specific interest in the neuromuscular contribution in the period following shortly after a sudden knee extension perturbation. The knee was selected as an in vivo system to represent an inverted pendulum model. Kinematic and sEMG data were collected while subjects were in a prone position and exposed to sudden knee extension perturbations. A biomechanical model was used to estimate muscle forces and moments about the knee and these data were then used to calculate instantaneous MJRI. Data indicated that pre-voluntary muscle forces do contribute significantly to MJRI following a sudden knee extension perturbation as there was a 40% increase in total MJRI in the flexion/extension and valgus/varus axes immediately following the perturbation, suggesting their importance in stabilizing the joint immediately after a disturbance. Additionally, knowledge of perturbation timing was shown to increase anticipatory MJRI levels, pre-perturbation (p< 0.05), indicating that it is advantageous for the neuromuscular system to prepare for a sudden disturbance. In conclusion, the data show that the neuromuscular feedback system significantly contributes to MJRI and it is believed that this behaviour enhances joint impedance following a sudden knee extension perturbation.
机译:先前的研究表明,反射产生的肌肉力量在协调自愿肌肉力量之前有助于关节的稳定性。本研究的目的是通过计算单个肌肉对关节旋转阻抗(MJRI)的贡献来量化腿部肌肉的行为,并特别关注突然的膝盖伸展扰动后不久的这段时间内的神经肌肉贡献。选择膝盖作为体内系统来代表倒立摆模型。运动和sEMG数据是在受试者俯卧并且暴露于突然的膝盖伸展扰动时收集的。使用生物力学模型来估计肌肉力量和膝盖周围的力矩,然后使用这些数据来计算瞬时MJRI。数据表明,在突然的膝盖伸展扰动之后,自愿性肌肉力量确实对MJRI做出了重要贡献,因为在扰动之后,屈曲/伸展轴和外翻/内翻轴的总MJRI增加了40%,这表明它们在稳定肌肉中的重要性。扰动后立即关节。另外,显示出对摄动时间的了解会增加预期的MJRI水平,即摄动前(p <0.05),这表明神经肌肉系统为突发性疾病做好准备是有利的。总之,数据表明神经肌肉反馈系统对MJRI有重要贡献,并且据信这种行为会在突然的膝盖伸展扰动后增强关节阻抗。

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