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Hook, J. C.

Publications and source records attributed to Hook, J. C..

2 recordsLinked to original sources

Polar confinement of a macromolecular machine by an SRP-type GTPase

The SRP-type GTPase FlhF, along with its regulator FlhG, orchestrates the localization and quantity of flagella in bacteria. Our study reveals that FlhF anchors developing flagellar structures to the polar landmark protein HubP/FimV, thereby restricting their formation to the cell pole. Specifically, the GTPase domain of FlhF interacts with HubP, while an as-yet-uncharacterized structured domain at the N-terminus of FlhF binds to FliG. This FlhF-bound FliG subsequently engages with the MS-ring protein FliF, but not with the C-ring proteins FliM/FliN. Consequently, FlhFs interaction with HubP/FliG recruits a functional FliF/FliG complex to the pole, while FlhGs modulation of FlhF controls FliGs interaction with FliM/FliN, thereby regulating the progression of flagellar assembly at the pole. Significance statementFlagella serve as bacterial locomotion organelles, with their number and location, known as the flagellation pattern, being species-specific and among the earliest taxonomic criteria in microbiology. Bacteria replicate their flagellation pattern with each cell division. Flagella localization and abundance depends on the SRP-type GTPase FlhF, together with its regulator FlhG. Our study clarifies the mechanism through which FlhF coordinates the polar positioning of the flagellum, working in tandem with the polar landmark protein HubP and aiding in the assembly of flagellar MS-ring/C-ring components at the cellular pole.

microbiology↗

A conserved cell-pole determinant organizes proper polar flagellum formation

The coordination of cell cycle progression and flagellar synthesis is a complex process in motile bacteria. In {gamma}-proteobacteria, the localization of the flagellum to the cell pole is mediated by the SRP-type GTPase FlhF. However, the mechanism of action of FlhF, and its relationship with the cell pole landmark protein HubP remain unclear. In this study, we discovered a novel protein called FipA that is required for normal FlhF activity and function in polar flagellar synthesis. We demonstrated that membrane-localized FipA interacts with FlhF and is required for normal flagellar synthesis in Vibrio parahaemolyticus, Pseudomonas putida, and Shewanella putrefaciens, and it does so independently of the polar localization mediated by HubP. FipA exhibits a dynamic localization pattern and is present at the designated pole before flagellar synthesis begins, suggesting its role in licensing flagellar formation. This discovery provides insight into a new pathway for regulating flagellum synthesis and coordinating cellular organization in bacteria that rely on polar flagellation and FlhF-dependent localization.

microbiology↗