Taviti Ashoka Chary, Beuria Tushar Kant
Institute of Life Sciences, Nalco Square, Bhubaneswar, Odisha 751023, India.
Manipal University, Manipal, Karnataka 576104, India.
Biochem J. 2017 Sep 7;474(18):3189-3205. doi: 10.1042/BCJ20170357.
Cell division in bacteria is a highly controlled and regulated process. FtsZ, a bacterial cytoskeletal protein, forms a ring-like structure known as the Z-ring and recruits more than a dozen other cell division proteins. The Min system oscillates between the poles and inhibits the Z-ring formation at the poles by perturbing FtsZ assembly. This leads to an increase in the FtsZ concentration at the mid-cell and helps in Z-ring positioning. MinC, the effector protein, interferes with Z-ring formation through two different mechanisms mediated by its two domains with the help of MinD. However, the mechanism by which MinD triggers MinC activity is not yet known. We showed that MinD directly interacts with FtsZ with an affinity stronger than the reported MinC-FtsZ interaction. We determined the MinD-binding site of FtsZ using computational, mutational and biochemical analyses. Our study showed that MinD binds to the H10 helix of FtsZ. Single-point mutations at the charged residues in the H10 helix resulted in a decrease in the FtsZ affinity towards MinD. Based on our findings, we propose a novel model for MinCD-FtsZ interaction, where MinD through its direct interaction with FtsZ would trigger MinC activity to inhibit FtsZ functions.
细菌中的细胞分裂是一个高度受控和调节的过程。FtsZ是一种细菌细胞骨架蛋白,形成一种称为Z环的环状结构,并招募十几种其他细胞分裂蛋白。Min系统在两极之间振荡,并通过干扰FtsZ组装来抑制两极处Z环的形成。这导致细胞中部FtsZ浓度增加,并有助于Z环定位。效应蛋白MinC在MinD的帮助下,通过其两个结构域介导的两种不同机制干扰Z环的形成。然而,MinD触发MinC活性的机制尚不清楚。我们发现MinD与FtsZ直接相互作用,其亲和力比报道的MinC-FtsZ相互作用更强。我们使用计算、突变和生化分析确定了FtsZ的MinD结合位点。我们的研究表明MinD与FtsZ的H10螺旋结合。H10螺旋中带电荷残基的单点突变导致FtsZ对MinD的亲和力降低。基于我们的发现,我们提出了一个关于MinCD-FtsZ相互作用的新模型,其中MinD通过与FtsZ的直接相互作用触发MinC活性以抑制FtsZ功能。