Department of Ecophysiology, Max Planck Institute for Terrestrial Microbiology, Karl-von-Frisch, Marburg, Germany.
Arnold Sommerfeld Center for Theoretical Physics and Center for NanoScience, Department of Physics, Ludwig-Maximilians-Universität München, München, Germany.
Elife. 2021 Mar 18;10:e66160. doi: 10.7554/eLife.66160.
Cell division site positioning is precisely regulated but the underlying mechanisms are incompletely understood. In the social bacterium the ~15 MDa tripartite PomX/Y/Z complex associates with and translocates across the nucleoid in a PomZ ATPase-dependent manner to directly position and stimulate formation of the cytokinetic FtsZ-ring at midcell, and then undergoes fission during division. Here, we demonstrate that PomX consists of two functionally distinct domains and has three functions. The N-terminal domain stimulates ATPase activity of the ParA/MinD ATPase PomZ. The C-terminal domain interacts with PomY and forms polymers, which serve as a scaffold for PomX/Y/Z complex formation. Moreover, the PomX/PomZ interaction is important for fission of the PomX/Y/Z complex. These observations together with previous work support that the architecturally diverse ATPase activating proteins of ParA/MinD ATPases are highly modular and use the same mechanism to activate their cognate ATPase via a short positively charged N-terminal extension.
细胞分裂位点的定位受到精确调控,但相关的机制尚未完全阐明。在社会性细菌中,~15MDa 的三聚体 PomX/Y/Z 复合物通过依赖于 PomZ ATP 酶的方式与核体结合并在核体上易位,以直接定位并刺激细胞中部细胞分裂的 FtsZ-环的形成,然后在分裂过程中进行分裂。在这里,我们证明 PomX 由两个具有不同功能的结构域组成,具有三种功能。N 端结构域刺激 ParA/MinD ATP 酶 PomZ 的 ATP 酶活性。C 端结构域与 PomY 相互作用并形成聚合物,作为 PomX/Y/Z 复合物形成的支架。此外,PomX/PomZ 相互作用对于 PomX/Y/Z 复合物的分裂很重要。这些观察结果以及之前的工作支持 ParA/MinD ATP 酶的结构多样化 ATP 酶激活蛋白高度模块化,并通过短的带正电荷的 N 端延伸使用相同的机制激活其同源 ATP 酶。