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首页> 外文期刊>Biophysical Journal >Motor regulation results in distal forces that bend partially disintegrated chlamydomonas axonemes into circular arcs
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Motor regulation results in distal forces that bend partially disintegrated chlamydomonas axonemes into circular arcs

机译:运动调节导致远端力将部分分解的衣原体轴突弯曲成圆弧

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摘要

The bending of cilia and flagella is driven by forces generated by dynein motor proteins. These forces slide adjacent microtubule doublets within the axoneme, the motile cytoskeletal structure. To create regular, oscillatory beating patterns, the activities of the axonemal dyneins must be coordinated both spatially and temporally. It is thought that coordination is mediated by stresses or strains, which build up within the moving axoneme, and somehow regulate dynein activity. During experimentation with axonemes subjected to mild proteolysis, we observed pairs of doublets associating with each other and forming bends with almost constant curvature. By modeling the statics of a pair of filaments, we show that the activity of the motors concentrates at the distal tips of the doublets. Furthermore, we show that this distribution of motor activity accords with models in which curvature, or curvature-induced normal forces, regulates the activity of the motors. These observations, together with our theoretical analysis, provide evidence that dynein activity can be regulated by curvature or normal forces, which may, therefore, play a role in coordinating the beating of cilia and flagella.
机译:纤毛和鞭毛的弯曲是由动力蛋白产生的力驱动的。这些力使邻近的微管双联体在运动的细胞骨架结构-轴突内滑动。要创建规则的,振荡的跳动模式,必须在空间和时间上协调轴突动力蛋白的活动。据认为,协调是由应力或应变介导的,这些应力或应变在运动的轴突中积累,并以某种方式调节动力蛋白的活性。在对轴突进行轻度蛋白水解的实验过程中,我们观察到成对的双峰相互关联并形成几乎恒定曲率的弯曲。通过对一对细丝的静力学进行建模,我们表明电机的活动集中在双峰的远端。此外,我们表明,电动机活动的这种分布与其中曲率或由曲率引起的法向力调节电动机活动的模型相符。这些观察结果以及我们的理论分析提供了证据,证明动力蛋白可以通过曲率或法向力来调节,因此,它们可能在协调纤毛和鞭毛的跳动中发挥作用。

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