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Takekawa, N.

Publications and source records attributed to Takekawa, N..

4 recordsLinked to original sources

Structural analysis of S-ring composed of FliFG fusion proteins in marine Vibrio polar flagellar motors

The marine bacterium Vibrio alginolyticus possesses a polar flagellum driven by a sodium ion flow. The main components of the flagellar motor are the stator and rotor. The C-ring and MS-ring which are composed of FliG and FliF, respectively, are parts of the rotor. Here, we purified an MS-ring composed of FliF-FliG fusion proteins and solved the near-atomic resolution structure of the S-ring--the upper part of the MS-ring--using cryo-electron microscopy. This is the first report of an S-ring structure from Vibrio whereas, previously, only those from Salmonella have been reported. The Vibrio S-ring structure reveals novel features compared to that of Salmonella such as tilt angle differences of the core domain and the {beta}-collar region, the decrease of the inter-subunit interaction between core domains, and altered electrostatic inner-surface. The residues potentially interact with other flagellar components, such as FliE and FlgB, are well structurally conserved in Vibrio S-ring. These comparisons clarified the conserved and non-conserved structural features of the MS-ring across different species. IMPORTANCEUnderstanding the structure and function of the flagellar motor in bacterial species is essential for uncovering the mechanisms underlying bacterial motility and pathogenesis. Our study revealed the structure of the Vibrio S-ring, a part of its polar flagellar motor, and highlighted its unique features compared with the well-studied Salmonella S-ring. The observed differences in the inter-subunit interactions and in the tilt angles between the Vibrio and Salmonella S-rings highlighted the species-specific variations in the flagellar assembly. By concentrating on the region where the S-ring and the rod proteins interact, we uncovered conserved residues essential for the interaction. Our research contributes to advancing of bacterial flagellar biology.

biophysics↗

Formation of multiple flagella caused by a mutation of the flagellar rotor protein FliM in Vibrio alginolyticus

The marine bacterium Vibrio alginolyticus forms only a single flagellum at the cell pole. In Vibrio, two proteins (GTPase FlhF and ATPase FlhG) regulate flagellar number at the cell pole. We previously isolated a mutant strain characterized as NMB155 that forms multiple flagella despite the absence of mutations in flhF and flhG. NMB155 also exhibited straight swimming without a directional change in flagellar rotation. Whole-genome sequencing of NMB155 identified an E9K mutation in FliM that is a component of the C-ring in the flagellar rotor. Mutations in FliM result in defects in flagellar formation (fla) and flagellar rotation (che or mot); however, there are few reports indicating that FliM mutations increase the number of flagella. Here, we determined that the E9K mutation confers the multi-flagellar phenotype and also the che phenotype. The co-expression of wild-type FliM and FliM-E9K indicated that they were competitive in regard to determining the flagellar number. It had been shown that the ATPase activity of FlhG corresponds to the flagellar number. We observed that the ATPase activity of FlhG was increased by the addition of FliM but not by the addition of FliM-E9K. This indicates that the N-terminal region of FliM that includes the E9 residue interacts with FlhG to increase its ATPase activity, and the E9K mutation may inhibit this interaction. We concluded that FliM downregulate FlhG activity to inhibit the formation of additional flagella. ImportanceThe flagellar rotor generates a driving force to rotate the flagellum and is not involved in controlling the number of flagella in Vibrio. However, we observed that the E9K mutation in the rotor protein FliM confers multiple flagella. Our findings reveal a novel regulatory mechanism controlling flagellar number.

microbiology↗

ZomB is essential for chemotaxis of Vibrio alginolyticus by the rotational direction control of the polar flagellar motor

Bacteria exhibit chemotaxis by controlling flagellar rotation to move toward preferred places or away from non-preferred places. The change in rotation is triggered by the binding of the chemotaxis signaling protein CheY to the C-ring in the flagellar motor. Some specific bacteria, including Vibrio spp. and Shewanella spp. have a single transmembrane protein called ZomB. ZomB is essential for controlling the flagellar rotational direction in Shewanella putrefaciens and Vibrio parahaemolyticus. In this study, we confirmed that the zomB deletion results only in the counterclockwise (CCW) rotation of the motor in Vibrio alginolyticus as previously reported in other bacteria. We found that ZomB is not required for the clockwise (CW) rotation-fixing phenotype caused by mutations in fliG and fliM, and that ZomB is essential for CW rotation induced by overproduction of CheY. Purified ZomB proteins form multimers, indicating that ZomB functions as a complex. ZomB may interact with a protein involved in the flagellar rotation, stator proteins or rotor proteins. We found that ZomB is a new player in chemotaxis and is required for the rotational control in addition to CheY in Vibrio alginolyticus. ImportanceBacterial chemotaxis is performed by the control of the flagellar rotation. CheY and ZomB control the rotational direction of the flagellar motor in Vibrio spp. and Shewanella spp. In this study, we characterized ZomB in Vibrio alginolyticus, which is essential for the clockwise rotation of the motor.

microbiology↗

The FlhA linker mediates flagellar protein export switching during flagellar assembly

The flagellar protein export apparatus switches export specificity from hook-type to filament-type upon completion of hook assembly, thereby initiating filament assembly at the hook tip. The C-terminal cytoplasmic domain of FlhA (FlhAC) forms a homo-nonameric ring structure that serves as a docking platform for flagellar export chaperones in complex with their cognate filament-type substrates. Interactions of the flexible linker of FlhA (FlhAL) with its nearest FlhAC subunit in the ring allow the chaperones to bind to FlhAC to facilitate filament-type protein export, but it remains unclear how it occurs. Here, we report that FlhAL acts as a switch that brings the order to flagellar assembly. The crystal structure of FlhAC(E351A/D356A) showed that Trp-354 in FlhAL bound to the chaperone-binding site of its neighboring subunit. We propose that FlhAL binds to the chaperon-binding site of FlhAC to suppress the interaction between FlhAC and the chaperones until hook assembly is completed.

microbiology↗