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FlbB forms a distinctive ring essential for periplasmic flagellar assembly and motility in Borrelia burgdorferi
- Botting, Jack M;
- Rahman, Md Khalesur;
- Xu, Hui;
- Yue, Jian;
- Guo, Wangbiao;
- Del Mundo, Joshua T;
- Hammel, Michal;
- Motaleb, Md A;
- Liu, Jun
- Editor(s): Coburn, Jenifer
Published Web Location
https://doi.org/10.1371/journal.ppat.1012812Abstract
Spirochetes are a widespread group of bacteria with a distinct morphology. Some spirochetes are important human pathogens that utilize periplasmic flagella to achieve motility and host infection. The motors that drive the rotation of periplasmic flagella have a unique spirochete-specific feature, termed the collar, crucial for the flat-wave morphology and motility of the Lyme disease spirochete Borrelia burgdorferi. Here, we deploy cryo-electron tomography and subtomogram averaging to determine high-resolution in-situ structures of the B. burgdorferi flagellar motor. Comparative analysis and molecular modeling of in-situ flagellar motor structures from B. burgdorferi mutants lacking each of the known collar proteins (FlcA, FlcB, FlcC, FlbB, and Bb0236/FlcD) uncover a complex protein network at the base of the collar. Importantly, our data suggest that FlbB forms a novel periplasmic ring around the rotor but also acts as a scaffold supporting collar assembly and subsequent recruitment of stator complexes. The complex protein network based on the FlbB ring effectively bridges the rotor and 16 torque-generating stator complexes in each flagellar motor, thus contributing to the specialized motility and lifestyle of spirochetes in complex environments.
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