鞭毛
基底
生物物理学
膜
细菌外膜
内膜
衬套
生物
细胞生物学
结晶学
化学
材料科学
生物化学
大肠杆菌
基因
复合材料
作者
Steven Johnson,Emily Furlong,Justin C. Deme,Ashley L. Nord,Joseph J. E. Caesar,Fabienne F. V. Chevance,Richard M. Berry,Kelly T. Hughes,Susan M. Lea
出处
期刊:Nature microbiology
日期:2021-04-30
卷期号:6 (6): 712-721
被引量:67
标识
DOI:10.1038/s41564-021-00895-y
摘要
The bacterial flagellum is a macromolecular protein complex that enables motility in many species. Bacterial flagella self-assemble a strong, multicomponent drive shaft that couples rotation in the inner membrane to the micrometre-long flagellar filament that powers bacterial swimming in viscous fluids1–3. Here, we present structures of the intact Salmonella flagellar basal body4, encompassing the inner membrane rotor, drive shaft and outer-membrane bushing, solved using cryo-electron microscopy to resolutions of 2.2–3.7 Å. The structures reveal molecular details of how 173 protein molecules of 13 different types assemble into a complex spanning two membranes and a cell wall. The helical drive shaft at one end is intricately interwoven with the rotor component with both the export gate complex and the proximal rod forming interactions with the MS-ring. At the other end, the drive shaft distal rod passes through the LP-ring bushing complex, which functions as a molecular bearing anchored in the outer membrane through interactions with the lipopolysaccharide. The in situ structure of a protein complex capping the drive shaft provides molecular insights into the assembly process of this molecular machine. The in situ cryo-electron microscopy structure of the intact Salmonella flagellar basal body—including the inner membrane rotor, drive shaft and outer membrane bushing complex—elucidates the mechanisms of assembly of this complex macromolecular structure that enables bacterial motility.
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