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来自幽门螺旋杆菌的 DnaA/HobA 复合物结构为研究细菌 DNA 复制调控提供了线索。

The structure of a DnaA/HobA complex from Helicobacter pylori provides insight into regulation of DNA replication in bacteria.

机构信息

Macromolecular Crystallography Group ESRF, 6 rue Jules Horowitz, 38043 Grenoble cedex, France.

出版信息

Proc Natl Acad Sci U S A. 2009 Dec 15;106(50):21115-20. doi: 10.1073/pnas.0908966106. Epub 2009 Nov 25.

Abstract

Bacterial DNA replication requires DnaA, an AAA+ ATPase that initiates replication at a specific chromosome region, oriC, and is regulated by species-specific regulators that directly bind DnaA. HobA is a DnaA binding protein, recently identified as an essential regulator of DNA replication in Helicobacter pylori. We report the crystal structure of HobA in complex with domains I and II of DnaA (DnaA(I-II)) from H. pylori, the first structure of DnaA bound to one of its regulators. Biochemical characterization of the complex formed shows that a tetramer of HobA binds four DnaA(I-II) molecules, and that DnaA(I-II) is unable to oligomerize by itself. Mutagenesis and protein-protein interaction studies demonstrate that some of the residues located at the HobA-DnaA(I-II) interface in the structure are necessary for complex formation. Introduction of selected mutations into H. pylori shows that the disruption of the interaction between HobA and DnaA is lethal for the bacteria. Remarkably, the DnaA binding site of HobA is conserved in DiaA from Escherichia coli, suggesting that the structure of the HobA/DnaA complex represents a model for DnaA regulation in other Gram-negative bacteria. Our data, together with those from other studies, indicate that HobA could play a crucial scaffolding role during the initiation of replication in H. pylori by organizing the first step of DnaA oligomerization and attachment to oriC.

摘要

细菌 DNA 复制需要 DnaA,这是一种 AAA+ATP 酶,可在特定的染色体区域 oriC 起始复制,并受到直接与 DnaA 结合的种特异性调节剂的调控。HobA 是 DnaA 结合蛋白,最近被鉴定为幽门螺杆菌 DNA 复制的必需调节剂。我们报告了来自幽门螺杆菌的 HobA 与 DnaA(DnaA(I-II))的结构域 I 和 II 复合物的晶体结构,这是 DnaA 与其调节剂之一结合的第一个结构。对形成的复合物的生化特性进行了研究,结果表明 HobA 的四聚体结合了四个 DnaA(I-II)分子,并且 DnaA(I-II)本身无法寡聚化。突变和蛋白质相互作用研究表明,结构中位于 HobA-DnaA(I-II)界面的一些残基对于复合物的形成是必需的。将选定的突变引入幽门螺杆菌表明,HobA 与 DnaA 之间的相互作用的破坏对细菌是致命的。值得注意的是,HobA 的 DnaA 结合位点在大肠杆菌的 DiaA 中保守,这表明 HobA/DnaA 复合物的结构代表了其他革兰氏阴性细菌中 DnaA 调节的模型。我们的数据与其他研究的数据一起表明,HobA 可以通过组织 DnaA 寡聚化和与 oriC 附着的第一步,在幽门螺杆菌的复制起始中发挥关键的支架作用。

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