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Diverse high-torque bacterial flagellar motors assemble wider stator rings using a conserved protein scaffold

机译:多种高扭矩细菌鞭毛马达使用保守的蛋白质支架组装更宽的定子环

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摘要

Although it is known that diverse bacterial flagellar motors produce different torques, the mechanism underlying torque variation is unknown. To understand this difference better, we combined genetic analyses with electron cryo-tomography subtomogram averaging to determine in situ structures of flagellar motors that produce different torques, from Campylobacter and Vibrio species. For the first time, to our knowledge, our results unambiguously locate the torque-generating stator complexes and show that diverse high-torque motors use variants of an ancestrally related family of structures to scaffold incorporation of additional stator complexes at wider radii from the axial driveshaft than in the model enteric motor. We identify the protein components of these additional scaffold structures and elucidate their sequential assembly, demonstrating that they are required for stator-complex incorporation. These proteins are widespread, suggesting that different bacteria have tailored torques to specific environments by scaffolding alternative stator placement and number. Our results quantitatively account for different motor torques, complete the assignment of the locations of the major flagellar components, and provide crucial constraints for understanding mechanisms of torque generation and the evolution of multiprotein complexes.
机译:尽管已知各种细菌鞭毛马达产生不同的扭矩,但是扭矩变化的潜在机制尚不清楚。为了更好地理解这种差异,我们将遗传分析与电子冷冻断层扫描子图平均相结合,以确定来自弯曲杆菌和弧菌物种的鞭毛马达的原位结构,这些鞭毛马达产生不同的扭矩。就我们所知,我们的结果首次明确地确定了产生转矩的定子配合件,并显示出各种高扭矩电机使用祖先相关的结构家族的变型,以脚手架形式将附加的定子配合件并入轴向传动轴的较宽半径比模型肠动力车要多我们确定这些额外的支架结构的蛋白质成分,并阐明它们的顺序组装,表明它们是定子复合体结合所必需的。这些蛋白质广泛存在,表明不同的细菌通过脚手架固定定子的位置和数量来适应特定环境的扭矩。我们的研究结果定量地说明了不同的电动机转矩,完成了主要鞭毛组件位置的分配,并为理解转矩产生和多蛋白复合物的进化机理提供了关键性的约束条件。

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