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Flagellar Hook Flexibility Is Essential for Bundle Formation in Swimming Escherichia coli Cells

机译:鞭毛钩的柔韧性对于游泳大肠杆菌细胞的束形成必不可少

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摘要

Swimming Escherichia coli cells are propelled by the rotary motion of their flagellar filaments. In the normal swimming pattern, filaments positioned randomly over the cell form a bundle at the posterior pole. It has long been assumed that the hook functions as a universal joint, transmitting rotation on the motor axis through up to ∼90° to the filament in the bundle. Structural models of the hook have revealed how its flexibility is expected to arise from dynamic changes in the distance between monomers in the helical lattice. In particular, each of the 11 protofilaments that comprise the hook is predicted to cycle between short and long forms, corresponding to the inside and outside of the curved hook, once each revolution of the motor when the hook is acting as a universal joint. To test this, we genetically modified the hook so that it could be stiffened by binding streptavidin to biotinylated monomers, impeding their motion relative to each other. We found that impeding the action of the universal joint resulted in atypical swimming behavior as a consequence of disrupted bundle formation, in agreement with the universal joint model.
机译:游泳的大肠杆菌细胞通过鞭毛细丝的旋转运动来推动。在正常的游泳模式下,细丝随机位于细胞上方,在后极形成一束。长期以来,人们一直认为钩子起着万向节的作用,将电动机轴上的旋转方向旋转的最大角度约为90°,然后传递至束中的细丝。钩子的结构模型已经揭示了如何预期其柔韧性会因螺旋晶格中单体之间距离的动态变化而产生。特别地,当钩子用作万向接头时,电动机每旋转一次,就预测组成钩子的11个原型丝中的每一个在短形和长形之间循环,对应于弯曲钩子的内部和外部。为了测试这一点,我们对钩进行了基因改造,以便可以通过将链霉亲和素与生物素化单体结合而使其变硬,从而阻止它们相对于彼此运动。我们发现,阻碍万向节的动作会导致不正常的游泳行为,这是束形成中断的结果,这与万向节模型一致。

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