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在纳米盘中证明了大肠杆菌细胞分裂 ZipA 和 FtsZ 蛋白的动态相互作用。

Dynamic interaction of the Escherichia coli cell division ZipA and FtsZ proteins evidenced in nanodiscs.

机构信息

Centro de Investigaciones Biológicas, Consejo Superior de Investigaciones Cientificas (CSIC), 28006 Madrid, Spain.

出版信息

J Biol Chem. 2012 Aug 31;287(36):30097-104. doi: 10.1074/jbc.M112.388959. Epub 2012 Jul 11.

Abstract

The full-length ZipA protein from Escherichia coli, one of the essential components of the division proto-ring that provides membrane tethering to the septation FtsZ protein, has been incorporated in single copy into nanodiscs formed by a membrane scaffold protein encircling an E. coli phospholipid mixture. This is an acellular system that reproduces the assembly of part of the cell division components. ZipA contained in nanodiscs (Nd-ZipA) retains the ability to interact with FtsZ oligomers and with FtsZ polymers. Interactions with FtsZ occur at similar strengths as those involved in the binding of the soluble form of ZipA, lacking the transmembrane region, suggesting that the transmembrane region of ZipA has little influence on the formation of the ZipA·FtsZ complex. Peptides containing partial sequences of the C terminus of FtsZ compete with FtsZ polymers for binding to Nd-ZipA. The affinity of Nd-ZipA for the FtsZ polymer formed with GTP or GMPCPP (a slowly hydrolyzable analog of GTP) is moderate (micromolar range) and of similar magnitude as for FtsZ-GDP oligomers. Polymerization does not stabilize the binding of FtsZ to ZipA. This supports the role of ZipA as a passive anchoring device for the proto-ring with little implication, if any, in the regulation of its assembly. Furthermore, it indicates that the tethering of FtsZ to the membrane shows sufficient plasticity to allow for its release from noncentral regions of the cytoplasmic membrane and its subsequent relocation to midcell when demanded by the assembly of a division ring.

摘要

大肠杆菌全长 ZipA 蛋白是分裂原环的必需组成部分之一,为间隔 FtsZ 蛋白提供膜连接。该蛋白已被单个拷贝整合到由膜支架蛋白环绕大肠杆菌磷脂混合物形成的纳米盘中。这是一个无细胞系统,可复制部分细胞分裂成分的组装。纳米盘中的 ZipA(Nd-ZipA)保留与 FtsZ 寡聚体和 FtsZ 聚合物相互作用的能力。与 FtsZ 的相互作用强度与可溶性 ZipA 形式结合时所涉及的强度相似,提示 ZipA 的跨膜区对 ZipA·FtsZ 复合物的形成影响不大。含有 FtsZ C 端部分序列的肽与 FtsZ 聚合物竞争与 Nd-ZipA 结合。Nd-ZipA 与用 GTP 或 GMPCPP(GTP 的缓慢水解类似物)形成的 FtsZ 聚合物的亲和力适中(微摩尔范围),与 FtsZ-GDP 寡聚体相似。聚合不会稳定 FtsZ 与 ZipA 的结合。这支持了 ZipA 作为原环的被动锚定装置的作用,如果有任何作用的话,也只是在其组装的调节中。此外,这表明 FtsZ 与膜的连接具有足够的灵活性,允许其从细胞质膜的非中心区域释放,并在装配分裂环时随后重新定位到细胞中部。

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