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Diverse and complex muscle spindle afferent firing properties emerge from multiscale muscle mechanics

机译:多尺度肌肉力学的不同和复杂的肌肉主轴传入射击特性

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摘要

Despite decades of research, we lack a mechanistic framework capable of predicting how movement-related signals are transformed into the diversity of muscle spindle afferent firing patterns observed experimentally, particularly in naturalistic behaviors. Here, a biophysical model demonstrates that well-known firing characteristics of mammalian muscle spindle Ia afferents – including movement history dependence, and nonlinear scaling with muscle stretch velocity – emerge from first principles of muscle contractile mechanics. Further, mechanical interactions of the muscle spindle with muscle-tendon dynamics reveal how motor commands to the muscle (alpha drive) versus muscle spindle (gamma drive) can cause highly variable and complex activity during active muscle contraction and muscle stretch that defy simple explanation. Depending on the neuromechanical conditions, the muscle spindle model output appears to ‘encode’ aspects of muscle force, yank, length, stiffness, velocity, and/or acceleration, providing an extendable, multiscale, biophysical framework for understanding and predicting proprioceptive sensory signals in health and disease.
机译:尽管研究了几十年,但我们缺乏能够预测运动相关信号如何转化为实验观察到的肌肉主轴传入烧制模式的多样性的机制框架,特别是在自然主义行为中。这里,生物物理模型表明,哺乳动物肌肉纺锤体IA传入的众所周知的烧制特征 - 包括运动历史依赖性,与肌肉拉伸速度的非线性缩放 - 从肌肉收缩力学的第一个原则出现。此外,具有肌腱动态的肌肉主轴的机械相互作用揭示了肌肉(α驱动器)与肌肉主轴(γ驱动)的电机命令如何引起高度可变和复杂的活性,而无视简单解释的肌肉伸展。根据神经力学条件,肌肉主轴模型输出似乎“编码”肌肉力,yank,长度,刚度,速度和/或加速度的方面,提供可扩展的多尺度,生物物理框架,用于理解和预测原主的感官信号健康和疾病。

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