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Morimoto, Y. V.

Publications and source records attributed to Morimoto, Y. V..

3 recordsLinked to original sources

Membrane voltage-dependent activation of the flagellar protein export engine

Ion motive force (IMF) consists of the electric potential difference ({Delta}{Psi}) and the ion concentration difference ({Delta}pI) across the cytoplasmic membrane. The flagellar protein export machinery is an ion/protein antiporter utilizing IMF to drive ion-coupled protein export, but it remains unknown how. Here, we report a {Delta}{Psi}-dependent activation mechanism of the transmembrane export gate complex. Depletions of both H+ and Na+ gradients nearly diminished flagellar protein export in the absence of the cytoplasmic ATPase complex, but an increase in {Delta}{Psi} by an upward shift of external pH from 7.5 to 8.5 dramatically recovered it. An increase in the cytoplasmic level of export substrates and gain-of-function mutations in FlhA enhanced protein export at external pH 7.5 in the absence of Na+ in a similar manner to {Delta}{Psi} increase. We propose that the export gate complex has a voltage-gated mechanism to activate the ion/protein antiporter of the flagellar protein export engine.

microbiology

The FlgN chaperone activates the Na+-driven engine of the flagellar protein export apparatus

The bacterial flagellar protein export machinery promotes H+-coupled translocation of flagellar proteins to the cell exterior. When the cytoplasmic ATPase complex does not function, the transmembrane export gate complex opens its Na+ channel and continues protein transport. However, it remains unknown how. Here we report that the FlgN chaperone acts as a switch to activate a backup export mechanism for the ATPase complex by activating the Na+-driven engine. Impaired interaction of FlhA with the FliJ subunit of the ATPase complex increased Na+-dependence of flagellar protein export. Deletion of FlgN inhibited protein export in the absence of the ATPase complex but not in its presence. Gain-of-function mutations in FlhA restored not only the FlgN defect but also the FliJ defect. We propose that the interaction of FlgN with FlhA opens the Na+ channel in the export engine, thereby maintaining the protein export activity in the absence of the active ATPase complex.

microbiology

Distinct chemotactic behavior in the original Escherichia coli K-12 depending on forward-and-backward swimming, not on run-tumble movements

Most motile bacteria are propelled by rigid, helical, flagellar filaments and display distinct swimming patterns to explore their favorable environments. Escherichia coli cells have a reversible rotary motor at the base of each filament. They exhibit a run-tumble swimming pattern, driven by switching of rotatory direction which causes polymorphic flagellar transformation. Here we report a novel swimming mode in E. coli ATCC10798, which is one of the original K-12 clones. High-speed tracking of single ATCC10798 cells showed forward and backward swimming with an average turning angle of 150{degrees}. The flagellar helicity remained right-handed with a 1.3 m pitch and 0.14 m helix radius, which is assumed to be a curly type, regardless of motor switching; the flagella of ATCC10798 did not show polymorphic transformation. The torque and rotational switching of the motor was almost identical to the E. coli W3110 strain, which is a derivative of K-12 and a wild-type for chemotaxis. The single point mutation of N87K in FliC, one of the filament subunits, is critical to the change in flagellar morphology and swimming pattern, and lack of flagellar polymorphism. E. coli cells expressing FliC(N87K) sensed ascending a chemotactic gradient in liquid but did not form rings on a semi-solid surface. Based on these findings, we propose a flagellar polymorphism-dependent migration mechanism in structured environments.

microbiology