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M206I 突变对 H 驱动鞭毛马达中扭矩产生和定子组件的影响。

Effect of the MotA(M206I) Mutation on Torque Generation and Stator Assembly in the H-Driven Flagellar Motor.

机构信息

Department of Applied Physics, Graduate School of Engineering, Tohoku University, Sendai, Miyagi, Japan.

Department of Bioscience and Bioinformatics, Faculty of Computer Science and Systems Engineering, Kyushu Institute of Technology, Iizuka, Fukuoka, Japan

出版信息

J Bacteriol. 2019 Feb 25;201(6). doi: 10.1128/JB.00727-18. Print 2019 Mar 15.

Abstract

The bacterial flagellar motor is composed of a rotor and a dozen stators and converts the ion flux through the stator into torque. Each stator unit alternates in its attachment to and detachment from the rotor even during rotation. In some species, stator assembly depends on the input energy, but it remains unclear how an electrochemical potential across the membrane (e.g., proton motive force [PMF]) or ion flux is involved in stator assembly dynamics. Here, we focused on pH dependence of a slow motile MotA(M206I) mutant of The MotA(M206I) motor produces torque comparable to that of the wild-type motor near stall, but its rotation rate is considerably decreased as the external load is reduced. Rotation assays of flagella labeled with 1-μm beads showed that the rotation rate of the MotA(M206I) motor is increased by lowering the external pH whereas that of the wild-type motor is not. Measurements of the speed produced by a single stator unit using 1-μm beads showed that the unit speed of the MotA(M206I) is about 60% of that of the wild-type and that a decrease in external pH did not affect the MotA(M206I) unit speed. Analysis of the subcellular stator localization revealed that the number of functional stators is restored by lowering the external pH. The pH-dependent improvement of stator assembly was observed even when the PMF was collapsed and proton transfer was inhibited. These results suggest that MotA-Met206 is responsible for not only load-dependent energy coupling between the proton influx and rotation but also pH-dependent stator assembly. The bacterial flagellar motor is a rotary nanomachine driven by the electrochemical transmembrane potential (ion motive force). About 10 stators (MotA/MotB complexes) are docked around a rotor, and the stator recruitment depends on the load, ion motive force, and coupling ion flux. The MotA(M206I) mutation slows motor rotation and decreases the number of docked stators in We show that lowering the external pH improves the assembly of the mutant stators. Neither the collapse of the ion motive force nor a mutation mimicking the proton-binding state inhibited stator localization to the motor. These results suggest that MotA-Met206 is involved in torque generation and proton translocation and that stator assembly is stabilized by protonation of the stator.

摘要

细菌鞭毛马达由一个转子和十几个定子组成,它将通过定子的离子流转换为扭矩。每个定子单元在旋转过程中都会交替附着和脱离转子。在某些物种中,定子组件取决于输入能量,但膜电化学势(例如质子动力势[PMF])或离子流如何参与定子组件动力学仍然不清楚。在这里,我们专注于 pH 值对缓慢运动的 MotA(M206I)突变体的影响,该突变体的 MotA(M206I)马达在失速时产生与野生型马达相当的扭矩,但随着外部负载的降低,其旋转速度大大降低。用 1-μm 珠粒标记的鞭毛旋转实验表明,降低外部 pH 值会增加 MotA(M206I)马达的旋转速度,而野生型马达的旋转速度则不会增加。使用 1-μm 珠粒测量单个定子单元产生的速度表明,MotA(M206I)的单元速度约为野生型的 60%,并且降低外部 pH 值不会影响 MotA(M206I)的单元速度。对亚细胞定子定位的分析表明,通过降低外部 pH 值可以恢复功能性定子的数量。即使 PMF 崩溃和质子转移被抑制,也观察到定子组装的 pH 依赖性改善。这些结果表明,MotA-Met206 不仅负责质子流入和旋转之间与负载相关的能量偶联,还负责 pH 依赖性定子组装。细菌鞭毛马达是一种由跨膜电化学势(离子动力势)驱动的旋转纳米机器。大约 10 个定子(MotA/MotB 复合物)围绕转子停靠,定子募集取决于负载、离子动力势和耦合离子流。MotA(M206I)突变会降低马达的旋转速度并减少停靠的定子数量,我们表明降低外部 pH 值可以改善突变定子的组装。离子动力势的崩溃或模拟质子结合状态的突变都不会抑制定子在马达上的定位。这些结果表明 MotA-Met206 参与了扭矩的产生和质子的转运,并且质子化稳定了定子的组装。

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