Department of Physics, University of Science and Technology of China, Hefei, Anhui 230026, China.
Phys Rev Lett. 2023 Mar 31;130(13):138401. doi: 10.1103/PhysRevLett.130.138401.
The bacterial hook, as a universal joint coupling rotation of the flagellar motor and the filament, is an important component of the flagellum that propels the bacteria to swim. The mechanical properties of the hook are essential for the flagellum to achieve normal functions. In multiflagellated bacteria such as Escherichia coli, the hook must be compliant so that it can bend for the filaments to form a coherently rotating bundle to generate the thrust when the motor rotates counterclockwise (CCW), yet it also must be rigid so that the bundle can disrupt for the bacteria to tumble to change swimming direction when the motor rotates clockwise (CW). Here, by combining an elastic rod model with high-resolution bead assay to accurately measure the bending stiffness of the hook under CCW or CW rotation in vivo, we elucidate how the hook accomplishes this dual functionality: the hook stiffens under CW rotation, with bending stiffness under CW rotation twice as large as that under CCW rotation. This enables a robust run-and-tumble swimming motility for multiflagellated bacteria.
细菌钩作为鞭毛马达和鞭毛丝旋转的万向节联轴器,是推动细菌游动的鞭毛的重要组成部分。钩的机械性能对于鞭毛实现正常功能至关重要。在大肠杆菌等多鞭毛细菌中,钩必须具有柔韧性,以便在马达逆时针(CCW)旋转时弯曲,使鞭毛丝形成一个连贯的旋转束,从而产生推力;但它也必须具有刚性,以便在马达顺时针(CW)旋转时,束可以中断,使细菌翻滚以改变游动方向。在这里,我们通过将弹性杆模型与高分辨率珠粒测定法相结合,在体内精确测量 CCW 或 CW 旋转下钩的弯曲刚度,阐明了钩如何实现这双重功能:钩在 CW 旋转下变硬,CW 旋转下的弯曲刚度是 CCW 旋转下的两倍。这使多鞭毛细菌具有稳健的跑跌游动运动性。