Department of Microbiology, University of Illinois at Urbana-Champaign, Urbana, Illinois, USA.
Department of Chemistry and Biochemistry, New Mexico State University, Las Cruces, New Mexico, USA.
J Bacteriol. 2023 Feb 22;205(2):e0029622. doi: 10.1128/jb.00296-22. Epub 2023 Jan 24.
Maintaining proper chromosome inheritance after the completion of each cell cycle is paramount for bacterial survival. Mechanistic details remain incomplete for how bacteria manage to retain complete chromosomes after each cell cycle. In this study, we examined the potential roles of the partitioning protein ParA on chromosomal maintenance that go beyond triggering the onset of chromosome segregation in Caulobacter crescentus. Our data revealed that increasing the levels of ParA result in cells with multiple origins of replication in a DnaA-ATP-dependent manner. This supernumerary is retained even when expressing variants of ParA that are deficient in promoting chromosome segregation. Our data suggest that in Caulobacter ParA's impact on replication initiation is likely indirect, possibly through the effect of other cell cycle events. Overall, our data provide new insights into the highly interconnected network that drives the forward progression of the bacterial cell cycle. The successful generation of a daughter cell containing a complete copy of the chromosome requires the exquisite coordination of major cell cycle events. Any mistake in this coordination can be lethal, making these processes ideal targets for novel antibiotics. In this study, we focused on the coordination between the onset of chromosome replication, and the partitioning protein ParA. We demonstrate that altering the cellular levels of ParA causes cells to accumulate multiple origins of replication in Caulobacter crescentus. Our work provides important insights into the complex regulation involved in the coordination of the bacterial cell cycle.
维持每个细胞周期后正确的染色体遗传对于细菌的生存至关重要。细菌如何在每个细胞周期后保留完整的染色体,其机制细节仍不完整。在这项研究中,我们研究了分隔蛋白 ParA 在染色体维持方面的潜在作用,这些作用超出了触发钙杆状菌中染色体分离的作用。我们的数据表明,增加 ParA 的水平会导致细胞以 DnaA-ATP 依赖的方式具有多个复制起点。即使表达促进染色体分离缺陷的 ParA 变体,这种多余的复制起点仍然保留。我们的数据表明,在钙杆状菌中,ParA 对复制起始的影响可能是间接的,可能是通过其他细胞周期事件的影响。总的来说,我们的数据为驱动细菌细胞周期前进的高度互联网络提供了新的见解。成功生成含有完整染色体副本的子细胞需要主要细胞周期事件的精确协调。在这个协调中出现任何错误都可能是致命的,因此这些过程是新型抗生素的理想靶点。在这项研究中,我们专注于染色体复制开始和分隔蛋白 ParA 之间的协调。我们证明,改变 ParA 的细胞水平会导致钙杆状菌中积累多个复制起点。我们的工作为协调细菌细胞周期所涉及的复杂调控提供了重要的见解。