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Muscle force-stiffness characteristics influence joint stability: a spine example.

机译:肌肉力量-刚度特性影响关节稳定性:一个脊柱例子。

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BACKGROUND: The muscle force-stiffness relationship has often been modeled as linear, while in situ muscle research has clearly demonstrated non-linearity. Estimation of rotational joint stability relies on both a muscle's instantaneous pre-perturbation force and stiffness. Under conditions of static equilibrium, a muscle's stiffness will function in a stabilizing manner, while its force can function in either a stabilizing or destabilizing manner depending on the muscle's orientation about the joint. METHODS: A single muscle (rectus abdominis) was modeled and its individual direct stabilizing potential about the L4-L5 spine joint was analyzed. Three force-stiffness relationships were examined: (1) linear; (2) non-linear with moderate stiffness magnitudes; (3) non-linear with higher stiffness magnitudes. FINDINGS: With a linear force-stiffness relationship, stability increased proportional to muscle force; with a non-linear relationship, stability peaked and subsequently decreased at submaximal muscle forces. When considering the lower, as opposed to the higher non-linear stiffness magnitudes, the stabilizing potential of the muscle peaked at a lower muscle force level and actually became negative (destabilizing) at a critical stiffness magnitude. INTERPRETATION: It was concluded that a non-linear muscle force-stiffness relationship greatly alters the individual stabilizing potential of the muscle throughout its progression of force development. A muscle's stabilizing contribution may actually peak at and subsequently decrease above a critical submaximal force level. Incorporating this knowledge into stability models may assist in recognizing unstable events that lead to injury at higher levels of muscle activation.
机译:背景:肌肉力量-刚度关系通常被建模为线性,而原位肌肉研究清楚地表明了非线性。旋转关节稳定性的估计取决于肌肉的瞬时预摄动力和刚度。在静态平衡的条件下,肌肉的僵硬度将以稳定的方式发挥作用,而其力可根据肌肉在关节周围的方向以稳定或不稳定的方式发挥作用。方法:对单个肌肉(腹直肌)进行建模,并分析其对L4-L5脊柱关节的直接直接稳定潜力。检查了三个力-刚度关系:(1)线性; (2)具有中等刚度大小的非线性; (3)具有较高刚度幅度的非线性。结果:线性的力刚度关系,稳定性增加与肌肉力量成正比。在非线性关系下,稳定性达到峰值,然后在次最大的肌肉力作用下降低。当考虑较低的非线性刚度大小时,与较高的非线性刚度大小相反,肌肉的稳定电位在较低的肌肉力量水平达到峰值,而在临界刚度大小时实际上变为负(不稳定)。解释:得出的结论是,非线性肌肉力量与刚度的关系极大地改变了整个力量发展过程中肌肉的个体稳定潜力。肌肉的稳定作用实际上可能在临界次最大力水平达到峰值,然后逐渐下降。将这些知识整合到稳定性模型中可能有助于识别不稳定事件,这些不稳定事件会在较高水平的肌肉激活时导致受伤。

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