Taylor James A, Panis Gaël, Viollier Patrick H, Marczynski Gregory T
Department of Microbiology and Immunology, McGill University, 3775 University St., Montreal, QC H3A 2B4, Canada.
Department of Microbiology and Molecular Medicine, University of Geneva Medical School, 1 rue Michel-Servet, CH-1211 Geneva 4, Switzerland.
Nucleic Acids Res. 2017 Sep 6;45(15):8916-8929. doi: 10.1093/nar/gkx596.
We searched for regulators of chromosome replication in the cell cycle model Caulobacter crescentus and found a novel DNA-binding protein (GapR) that selectively aids the initiation of chromosome replication and the initial steps of chromosome partitioning. The protein binds the chromosome origin of replication (Cori) and has higher-affinity binding to mutated Cori-DNA that increases Cori-plasmid replication in vivo. gapR gene expression is essential for normal rapid growth and sufficient GapR levels are required for the correct timing of chromosome replication. Whole genome ChIP-seq identified dynamic DNA-binding distributions for GapR, with the strongest associations at the partitioning (parABS) locus near Cori. Using molecular-genetic and fluorescence microscopy experiments, we showed that GapR also promotes the first steps of chromosome partitioning, the initial separation of the duplicated parS loci following replication from Cori. This separation occurs before the parABS-dependent partitioning phase. Therefore, this early separation, whose mechanisms is not known, coincides with the poorly defined mechanism(s) that establishes chromosome asymmetry: C. crescentus chromosomes are partitioned to distinct cell-poles which develop into replicating and non-replicating cell-types. We propose that GapR coordinates chromosome replication with asymmetry-establishing chromosome separation, noting that both roles are consistent with the phylogenetic restriction of GapR to asymmetrically dividing bacteria.
我们在新月柄杆菌细胞周期模型中寻找染色体复制的调控因子,发现了一种新型DNA结合蛋白(GapR),它能选择性地辅助染色体复制的起始以及染色体分配的初始步骤。该蛋白与染色体复制起点(Cori)结合,并且对突变的Cori-DNA具有更高的亲和力,这会增加体内Cori-质粒的复制。gapR基因表达对于正常快速生长至关重要,并且正确的染色体复制时间需要足够的GapR水平。全基因组ChIP-seq确定了GapR动态的DNA结合分布,在靠近Cori的分配(parABS)位点有最强的关联。通过分子遗传学和荧光显微镜实验,我们表明GapR还促进染色体分配的第一步,即复制后从Cori开始的重复parS位点的初始分离。这种分离发生在parABS依赖性分配阶段之前。因此,这种机制尚不清楚的早期分离,与建立染色体不对称性的定义不明确的机制相吻合:新月柄杆菌染色体被分配到不同的细胞极,这些细胞极发育成复制型和非复制型细胞类型。我们提出GapR协调染色体复制与建立不对称性的染色体分离,注意到这两个作用都与GapR在不对称分裂细菌中的系统发育限制一致。