Department of Chemistry, Indian Institute of Technology Bombay, Mumbai, India.
FEBS J. 2013 Sep;280(18):4585-99. doi: 10.1111/febs.12429. Epub 2013 Aug 2.
The assembly of FtsZ plays a central role in construction of the cytokinetic Z-ring that orchestrates bacterial cell division. A naturally occurring naphthoquinone, plumbagin, is known to exhibit antibacterial properties against several types of bacteria. In this study, plumbagin was found to perturb formation of the Z-ring in Bacillus subtilis 168 cells and to cause elongation of these cells without an apparent effect on nucleoid segregation, indicating that it may inhibit FtsZ assembly. Furthermore, it bound to purified B. subtilis FtsZ (BsFtsZ) with a dissociation constant of 20.7 ± 5.6 μM, and inhibited the assembly and GTPase activity of BsFtsZ in vitro. Interestingly, plumbagin did not inhibit either the assembly or GTPase activity of Escherichia coli FtsZ (EcFtsZ) in vitro. Using docking analysis, a putative plumbagin-binding site on BsFtsZ was identified, and the analysis indicated that hydrophobic interactions and hydrogen bonds predominate. Based on the in silico analysis, two variants of BsFtsZ, namely D199A and V307R, were constructed to explore the binding interaction of plumbagin and BsFtsZ. The effects of plumbagin on the assembly and GTPase activity of the variant BsFtsZ proteins in vitro indicated that the residues D199 and V307 may be involved in the binding of plumbagin to BsFtsZ. The results suggest that plumbagin inhibits bacterial proliferation by inhibiting the assembly of FtsZ, and provide insight into the binding site of plumbagin on BsFtsZ, which may help in the design of potent FtsZ-targeted antibacterial agents.
FtsZ 的组装在细胞分裂的调控中起着核心作用,细胞分裂协调物细胞周质 Z 环的形成。天然存在的萘醌化合物,百秋李醇,已知对几种类型的细菌具有抗菌特性。在这项研究中,百秋李醇被发现会扰乱枯草芽孢杆菌 168 细胞中 Z 环的形成,并导致这些细胞的伸长,而对核分离没有明显影响,表明它可能抑制 FtsZ 的组装。此外,它与纯化的枯草芽孢杆菌 FtsZ(BsFtsZ)结合的解离常数为 20.7±5.6 μM,并抑制 BsFtsZ 在体外的组装和 GTPase 活性。有趣的是,百秋李醇在体外既不抑制大肠杆菌 FtsZ(EcFtsZ)的组装也不抑制其 GTPase 活性。通过对接分析,确定了 BsFtsZ 上的一个潜在百秋李醇结合位点,分析表明疏水相互作用和氢键占主导地位。基于计算机模拟分析,构建了两个枯草芽孢杆菌 FtsZ 的变体,即 D199A 和 V307R,以探索百秋李醇与 BsFtsZ 的结合相互作用。百秋李醇对变体 BsFtsZ 蛋白在体外组装和 GTPase 活性的影响表明,残基 D199 和 V307 可能参与了百秋李醇与 BsFtsZ 的结合。结果表明,百秋李醇通过抑制 FtsZ 的组装来抑制细菌的增殖,并深入了解百秋李醇在 BsFtsZ 上的结合位点,这可能有助于设计有效的 FtsZ 靶向抗菌剂。