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首页> 外文期刊>Annals of the New York Academy of Sciences >The Geometric Clutch as a Working Hypothesis for Future Research on Cilia and Flagella
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The Geometric Clutch as a Working Hypothesis for Future Research on Cilia and Flagella

机译:几何离合器是纤毛和鞭毛未来研究的有效假设

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摘要

The Geometric Clutch hypothesis contends that the forces transverse to the flagellar axis (t-forces) act on the axonemal scaffold to regulate flagellar beating. T-forces develop as the product of the curvature and the accumulated tension or compression on the doublet microtubules. In this respect, t-force is a mediator of self-organizing behavior. It arises from the collective action of the assemblage of dynein motors on the structural components of the axoneme and, in turn, imparts order to the sequence of activation and deactivation of the dynein. At the switch point of the flagellar beat, the magnitude of the t-force per micron of fiagellum is approximately equal to the sum total of dynein force that can be generated per micron of fiagellum. This suggests that the t-force could directly overcome the force-producing dynein bridges and terminate their action. However, many questions remain to be answered concerning the behavior of the axonemal scaffold under stress. Little is known of the force-bearing capacity of the radial spokes and the central pair (cp) projections. The properties of these structures will determine how t-force is distributed within the axoneme. The mechanical and elastic properties of the dynein arms and nexin links need to be better understood to determine how they respond to the application of t-force. In the framework of the Geometric Clutch hypothesis these are the issues that are most important to explore if we are to understand how the fiagellum works.
机译:几何离合器假说认为,横贯鞭毛轴的力(t力)作用在轴突支架上,以调节鞭毛的搏动。 T力是双曲微管上曲率与累积张力或压缩力的乘积。在这方面,t力是自组织行为的中介。它是由于动力蛋白马达的组合对轴蛋白的结构成分的共同作用而产生的,继而使动力蛋白的活化和失活的顺序得到控制。在鞭毛搏动的转换点,每微米Fiagellum的t力大小大约等于每微米Fiagellum可以产生的达因力合计。这表明,t力可以直接克服产生动力的达因桥并终止其作用。然而,关于轴突支架在压力下的行为,仍有许多问题需要回答。径向辐条和中心对(cp)凸起的承力能力知之甚少。这些结构的特性将决定t力在轴突内的分布方式。需要更好地理解动力蛋白臂和神经毒素链接的机械和弹性特性,以确定它们如何响应t力的施加。在“几何离合器”假设的框架中,这些是最重要的问题,需要探讨是否我们要了解Fiagellum是如何工作的。

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