Department of Molecular Biology and Biotechnology, the University of Sheffield, Sheffield, UK.
Department of Biochemistry, University of Washington, Seattle, WA, USA.
Nat Commun. 2020 Jun 25;11(1):3210. doi: 10.1038/s41467-020-16981-4.
The bacterial flagellum is a remarkable molecular motor, whose primary function in bacteria is to facilitate motility through the rotation of a filament protruding from the bacterial cell. A cap complex, consisting of an oligomer of the protein FliD, is localized at the tip of the flagellum, and is essential for filament assembly, as well as adherence to surfaces in some bacteria. However, the structure of the intact cap complex, and the molecular basis for its interaction with the filament, remains elusive. Here we report the cryo-EM structure of the Campylobacter jejuni cap complex, which reveals that FliD is pentameric, with the N-terminal region of the protomer forming an extensive set of contacts across several subunits, that contribute to FliD oligomerization. We also demonstrate that the native C. jejuni flagellum filament is 11-stranded, contrary to a previously published cryo-EM structure, and propose a molecular model for the filament-cap interaction.
细菌鞭毛是一种非凡的分子马达,其在细菌中的主要功能是通过从细菌细胞突出的细丝的旋转来促进运动。一个由蛋白 FliD 寡聚体组成的帽状复合物位于鞭毛的尖端,对于细丝的组装以及某些细菌表面的黏附是必不可少的。然而,完整的帽状复合物的结构以及其与细丝相互作用的分子基础仍然难以捉摸。在这里,我们报告了弯曲杆菌 cap 复合物的 cryo-EM 结构,该结构揭示了 FliD 是五聚体,原蛋白的 N 端区域形成了一组广泛的接触,跨越几个亚基,有助于 FliD 寡聚化。我们还证明了天然弯曲杆菌的鞭毛细丝是 11 股,与之前发表的 cryo-EM 结构相反,并提出了细丝-帽相互作用的分子模型。