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Skeletal muscle contraction in protecting joints and bones by absorbing mechanical impacts

机译:骨骼肌收缩通过吸收机械冲击来保护关节和骨骼

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摘要

We have previously hypothesized that the dissipation of mechanical energy of external impact is a fundamental function of skeletal muscle in addition to its primary function to convert chemical energy into mechanical energy. In this paper, a mathematical justification of this hypothesis is presented. First, a simple mechanical model, in which the muscle is considered as a simple Hookean spring, is considered. This analysis serves as an introduction to the consideration of a biomechanical model taking into account the molecular mechanism of muscle contraction, kinetics of myosin bridges, sarcomere dynamics, and tension of muscle fibers. It is shown that a muscle behaves like a nonlinear and adaptive spring tempering the force of impact and increasing the duration of the collision. The temporal profiles of muscle reaction to the impact as functions of the levels of muscle contraction, durations of the impact front, and the time constants of myosin bridges closing, are obtained. The absorption of mechanical shock energy is achieved due to the increased viscoelasticity of the contracting skeletal muscle. Controlling the contraction level allows for the optimization of the stiffness and viscosity of the muscle necessary for the protection of the joints and bones.
机译:我们以前曾假设,外部冲击的机械能耗散是骨骼肌的基本功能,除了其将化学能转化为机械能的主要功能。在本文中,提出了该假设的数学证明。首先,考虑一个简单的机械模型,其中的肌肉被视为简单的胡克弹簧。该分析为考虑生物力学模型的介绍,该模型考虑了肌肉收缩的分子机制,肌球蛋白桥的动力学,肌小节动力学和肌肉纤维的张力。结果表明,肌肉的行为就像非线性的自适应弹簧一样,可以调节冲击力并增加碰撞持续时间。获得了对肌肉的反应的时间变化曲线,它是肌肉收缩水平,前锋持续时间和肌球蛋白桥闭合的时间常数的函数。由于收缩的骨骼肌的粘弹性增加,因此可以吸收机械冲击能量。控制收缩水平可以优化保护关节和骨骼所需的肌肉的刚度和粘度。

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