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闭链运动对生物运动和动态稳定性的意义。

The significance of closed kinematic chains to biological movement and dynamic stability.

作者信息

Levin Stephen, de Solórzano Susan Lowell, Scarr Graham

机构信息

60 Edward Street, Stapleford, Nottingham, NG9 8FJ, UK.

60 Edward Street, Stapleford, Nottingham, NG9 8FJ, UK.

出版信息

J Bodyw Mov Ther. 2017 Jul;21(3):664-672. doi: 10.1016/j.jbmt.2017.03.012. Epub 2017 Mar 12.

Abstract

Closed kinematic chains (CKCs) are widely used in mechanical engineering because they provide a simple and efficient mechanism with multiple applications, but they are much less appreciated in living tissues. Biomechanical research has been dominated by the use of lever models and their kinematic analysis, which has largely ignored the geometric organization of these ubiquitous and evolutionary-conserved systems, yet CKCs contribute substantially to our understanding of biological motion. Closed-chain kinematics couple multiple parts into continuous mechanical loops that allow the structure itself to regulate complex movements, and are described in a wide variety of different organisms, including humans. In a biological context, CKCs are modular units nested within others at multiple size scales as part of an integrated movement system that extends throughout the organism and can act in synergy with the nervous system, where present. They provide an energy-efficient mechanism that enables multiple mechanical functions to be optimized during embryological development and increases evolutionary diversity.

摘要

封闭运动链(CKCs)在机械工程中被广泛应用,因为它们提供了一种具有多种应用的简单高效机制,但在生物组织中却鲜为人知。生物力学研究一直以杠杆模型及其运动学分析为主导,这在很大程度上忽略了这些普遍存在且进化保守的系统的几何结构,然而封闭运动链对我们理解生物运动有很大贡献。闭链运动学将多个部分耦合到连续的机械回路中,使结构本身能够调节复杂运动,并且在包括人类在内的各种不同生物体中都有描述。在生物学背景下,封闭运动链是在多个大小尺度上嵌套在其他结构中的模块化单元,是整个生物体中集成运动系统的一部分,并且在有神经系统的情况下可以与神经系统协同作用。它们提供了一种节能机制,使多种机械功能在胚胎发育过程中得以优化,并增加了进化多样性。

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