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鞭毛环的结构特征揭示了螺旋体运动所必需的结构可塑性。

Characterization of the Flagellar Collar Reveals Structural Plasticity Essential for Spirochete Motility.

机构信息

Department of Microbial Pathogenesis, Yale University School of Medicine, New Haven, Connecticut, USA.

Microbial Sciences Institute, Yale University, West Haven, Connecticut, USA.

出版信息

mBio. 2021 Dec 21;12(6):e0249421. doi: 10.1128/mBio.02494-21. Epub 2021 Nov 23.

Abstract

Spirochetes are a remarkable group of bacteria with distinct morphology and periplasmic flagella that enable motility in viscous environments, such as host connective tissues. The collar, a spirochete-specific complex of the periplasmic flagellum, is required for this unique spirochete motility, yet it has not been clear how the collar assembles and enables spirochetes to transit between complex host environments. Here, we characterize the collar complex in the Lyme disease spirochete Borrelia burgdorferi. We discover as well as delineate the distinct functions of two novel collar proteins, FlcB and FlcC, by combining subtractive bioinformatic, genetic, and cryo-electron tomography approaches. Our high-resolution structures reveal that the multiprotein collar has a remarkable structural plasticity essential not only for assembly of flagellar motors in the highly curved membrane of spirochetes but also for generation of the high torque necessary for spirochete motility. Many spirochetes cause serious human diseases. They are well recognized by their distinct morphology and motility. Spirochete motility is driven by a periplasmic flagellum, which possesses a unique collar essential for flagellar assembly and spirochete motility. Here, we discover two novel collar proteins in the Lyme disease spirochete Borrelia burgdorferi. We demonstrate, for the first time, that the collar is a multiprotein complex with a remarkable plasticity that enables the motor to accommodate the highly curved membrane of spirochetes and generate the high torque necessary for spirochete motility.

摘要

螺旋体是一组具有独特形态和周质鞭毛的细菌,能够在粘性环境(如宿主结缔组织)中运动。套管是周质鞭毛的螺旋体特异性复合物,是这种独特的螺旋体运动所必需的,但套管如何组装以及如何使螺旋体在复杂的宿主环境中穿梭尚不清楚。在这里,我们描述了莱姆病螺旋体伯氏疏螺旋体中的套管复合物。我们通过结合减法生物信息学、遗传和低温电子断层摄影术方法,发现并描绘了两种新型套管蛋白 FlcB 和 FlcC 的独特功能。我们的高分辨率结构揭示了多蛋白套管具有显著的结构可塑性,不仅对于在螺旋体高度弯曲的膜中组装鞭毛马达是必需的,而且对于产生螺旋体运动所需的高扭矩也是必需的。许多螺旋体引起严重的人类疾病。它们的独特形态和运动性使其得到很好的识别。螺旋体的运动是由周质鞭毛驱动的,周质鞭毛具有一个独特的套管,对于鞭毛的组装和螺旋体的运动是必需的。在这里,我们在莱姆病螺旋体伯氏疏螺旋体中发现了两种新型套管蛋白。我们首次证明套管是一个具有显著可塑性的多蛋白复合物,使马达能够适应螺旋体的高度弯曲的膜,并产生螺旋体运动所需的高扭矩。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6e23/8609358/09d62e01a818/mbio.02494-21-f001.jpg

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