Department of Biology, University of Marburg, 35043 Marburg, Germany; Max Planck Institute for Terrestrial Microbiology, 35043 Marburg, Germany.
Department of Chemistry, University of Marburg, 35043 Marburg, Germany; Center for Synthetic Microbiology, 35043 Marburg, Germany.
Mol Cell. 2021 Oct 7;81(19):3992-4007.e10. doi: 10.1016/j.molcel.2021.09.004. Epub 2021 Sep 24.
ParB-like CTPases mediate the segregation of bacterial chromosomes and low-copy number plasmids. They act as DNA-sliding clamps that are loaded at parS motifs in the centromere of target DNA molecules and spread laterally to form large nucleoprotein complexes serving as docking points for the DNA segregation machinery. Here, we solve crystal structures of ParB in the pre- and post-hydrolysis state and illuminate the catalytic mechanism of nucleotide hydrolysis. Moreover, we identify conformational changes that underlie the CTP- and parS-dependent closure of ParB clamps. The study of CTPase-deficient ParB variants reveals that CTP hydrolysis serves to limit the sliding time of ParB clamps and thus drives the establishment of a well-defined ParB diffusion gradient across the centromere whose dynamics are critical for DNA segregation. These findings clarify the role of the ParB CTPase cycle in partition complex assembly and function and thus advance our understanding of this prototypic CTP-dependent molecular switch.
ParB 样 CTPase 介导细菌染色体和低拷贝数质粒的分离。它们作为 DNA 滑动夹,在靶 DNA 分子的着丝粒处的 parS 基序上加载,并侧向扩散形成大型核蛋白复合物,作为 DNA 分离机制的对接点。在这里,我们解决了预水解和后水解状态下 ParB 的晶体结构,并阐明了核苷酸水解的催化机制。此外,我们确定了构象变化,这些变化是 ParB 夹依赖于 CTP 和 parS 关闭的基础。对 CTPase 缺陷型 ParB 变体的研究表明,CTP 水解有助于限制 ParB 夹的滑动时间,从而驱动 ParB 扩散梯度在着丝粒上的建立,其动力学对于 DNA 分离至关重要。这些发现阐明了 ParB CTPase 循环在分隔复合物组装和功能中的作用,从而加深了我们对这种典型的 CTP 依赖性分子开关的理解。