Perez-Carrasco Ruben, Franco-Oñate María-José, Walter Jean-Charles, Dorignac Jérôme, Geniet Fred, Palmeri John, Parmeggiani Andrea, Walliser Nils-Ole, Nord Ashley L
Department of Life Sciences, Imperial College London, London SW7 2BU, UK.
Laboratoire Charles Coulomb (L2C), Univ. Montpellier, CNRS, Montpellier, France.
Sci Adv. 2022 Mar 25;8(12):eabl8112. doi: 10.1126/sciadv.abl8112. Epub 2022 Mar 23.
The bacterial flagellar motor is the membrane-embedded rotary motor, which turns the flagellum that provides thrust to many bacteria. This large multimeric complex, composed of a few dozen constituent proteins, is a hallmark of dynamic subunit exchange. The stator units are inner-membrane ion channels that dynamically bind to the peptidoglycan at the rotor periphery and apply torque. Their dynamic exchange is a function of the viscous load on the flagellum, allowing the bacterium to adapt to its local environment, although the molecular mechanisms of mechanosensitivity remain unknown. Here, by actively perturbing the steady-state stator stoichiometry of individual motors, we reveal a stoichiometry-dependent asymmetry in stator remodeling kinetics. We interrogate the potential effect of next-neighbor interactions and local stator unit depletion and find that neither can explain the observed asymmetry. We then simulate and fit two mechanistically diverse models that recapitulate the asymmetry, finding assembly dynamics to be particularly well described by a two-state catch-bond mechanism.
细菌鞭毛马达是嵌入膜中的旋转马达,它转动鞭毛,为许多细菌提供推力。这个由几十种组成蛋白构成的大型多聚体复合物是动态亚基交换的标志。定子单元是内膜离子通道,它们动态地结合到转子周边的肽聚糖上并施加扭矩。它们的动态交换是鞭毛上粘性负载的函数,使细菌能够适应其局部环境,尽管机械敏感性的分子机制仍然未知。在这里,通过主动扰动单个马达的稳态定子化学计量,我们揭示了定子重塑动力学中化学计量依赖性的不对称性。我们研究了相邻相互作用和局部定子单元消耗的潜在影响,发现两者都无法解释观察到的不对称性。然后,我们模拟并拟合了两种机制不同的模型,这些模型概括了不对称性,发现组装动力学可以用双态捕获键机制特别好地描述。