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Muscle Contributions to L4-5 Joint Rotational Stiffness following Sudden Trunk Flexion and Extension Perturbations

机译:突然的躯干屈伸运动引起的L4-5关节旋转刚度的肌肉贡献

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摘要

The purpose of this study was to investigate the contribution of individual muscles (MJRSm) to total joint rotational stiffness (MJRST) about the lumbar spine's L4-5 joint prior to, and following, sudden dynamic flexion or extension perturbations to the trunk. We collected kinematic and surface electromyography (sEMG) data while subjects maintained a kneeling posture on a parallel robotic platform, with their pelvis constrained by a harness. The parallel robotic platform caused sudden inertial trunk flexion or extension perturbations, with and without the subjects being aware of the timing and direction. Prevoluntary muscle forces incorporating both short and medium latency neuromuscular responses contributed significantly to joint rotational stiffness, following both sudden trunk flexion and extension motions. MJRST did not change with perturbation direction awareness. The lumbar erector spinae were always the greatest contributor to MJRST. This indicates that the neuromuscular feedback system significantly contributed to MJRST, and this behaviour likely enhances joint stability following sudden trunk flexion and extension perturbations.
机译:这项研究的目的是调查突然的动态屈曲或伸展运动对躯干的影响之前和之后,腰椎L4-5关节的单个肌肉(MJRSm)对总关节旋转刚度(MJRST)的贡献。我们收集了运动学和表面肌电图(sEMG)数据,而受试者在平行的机器人平台上保持跪姿,其骨盆受安全带约束。平行的机器人平台会导致突然的惯性躯干弯曲或伸展扰动,无论是否意识到受试者的时机和方向。突然的躯干弯曲和伸展运动后,结合了短时和中潜伏期神经肌肉反应的志愿性肌肉力量显着促进了关节旋转僵硬。 MJRST并没有随着摄动方向的感知而改变。腰直肌脊柱一直是MJRST的最大贡献者。这表明神经肌肉反馈系统明显促进了MJRST,并且这种行为可能会增强躯干突然弯曲和伸展引起的关节稳定性。

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