Department of Biology, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Department of Biology, Massachusetts Institute of Technology, Cambridge, MA 02139, USA; Howard Hughes Medical Institute, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.
Dev Cell. 2021 Aug 9;56(15):2145-2159.e7. doi: 10.1016/j.devcel.2021.06.014. Epub 2021 Jul 8.
In every organism, the cell cycle requires the execution of multiple processes in a strictly defined order. However, the mechanisms used to ensure such order remain poorly understood, particularly in bacteria. Here, we show that the activation of the essential CtrA signaling pathway that triggers cell division in Caulobacter crescentus is intrinsically coupled to the initiation of DNA replication via the physical translocation of a newly replicated chromosome, powered by the ParABS system. We demonstrate that ParA accumulation at the new cell pole during chromosome segregation recruits ChpT, an intermediate component of the CtrA signaling pathway. ChpT is normally restricted from accessing the selective PopZ polar microdomain until the new chromosome and ParA arrive. Consequently, any disruption to DNA replication initiation prevents ChpT polarization and, in turn, cell division. Collectively, our findings reveal how major cell-cycle events are coordinated in Caulobacter and, importantly, how chromosome translocation triggers an essential signaling pathway.
在每个生物体中,细胞周期都需要以严格定义的顺序执行多个过程。然而,用于确保这种顺序的机制仍然知之甚少,特别是在细菌中。在这里,我们表明,引发新月柄杆菌细胞分裂的必需 CtrA 信号通路的激活与 DNA 复制的起始内在相关,这是通过 ParABS 系统驱动的新复制染色体的物理移位实现的。我们证明,在染色体分离过程中,ParA 在新细胞极的积累会招募 ChpT,ChpT 是 CtrA 信号通路的中间成分。在新染色体和 ParA 到达之前,ChpT 通常被限制在无法进入选择的 PopZ 极性微域中。因此,任何对 DNA 复制起始的破坏都会阻止 ChpT 的极化,进而阻止细胞分裂。总的来说,我们的发现揭示了主要的细胞周期事件如何在新月柄杆菌中协调,重要的是,染色体易位如何触发必需的信号通路。