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体外形成RuvAB-霍利迪连接复合体

Formation of a RuvAB-Holliday junction complex in vitro.

作者信息

Parsons C A, West S C

机构信息

Imperial Cancer Research Fund, Clare Hall Laboratories, South Mimms, Herts, U.K.

出版信息

J Mol Biol. 1993 Jul 20;232(2):397-405. doi: 10.1006/jmbi.1993.1399.

Abstract

The ruvA and ruvB genes of Escherichia coli encode a novel DNA helicase that interacts with Holliday junctions and promotes branch migration. In this work, we have investigated the protein-DNA complexes formed between RuvA, RuvB and Holliday junctions. As shown previously, RuvA protein binds a synthetic Holliday junction in vitro, to form a specific protein-DNA complex that can be detected by a band-shift assay. We now show that the combined presence of RuvA and RuvB results in a super-shift of this complex indicative of the formation of a RuvAB-Holliday junction complex. In the absence of RuvA, the RuvB protein fails to bind Holliday junctions. The RuvAB-Holliday junction complex was detected by the band-shift assay only under conditions that favoured its stability, e.g. complex formation in the presence of a nucleoside triphosphate that can not be hydrolysed by RuvB (adenosine 5'-[gamma-thio]triphosphate). In contrast, nucleoside triphosphates that can be hydrolysed (ATP, dATP, dCTP or TTP), lead to RuvAB-mediated branch migration of the junction. These results indicate that the formation of a (RuvAB-ATP)-Holliday junction complex represents the first step in the process of branch migration, and that branch migration is dependent upon ATP hydrolysis. In addition, we show that Holliday junction DNA stimulates the ATPase activity of RuvAB to a greater extent than either single-stranded or linear duplex DNA.

摘要

大肠杆菌的ruvA和ruvB基因编码一种新型DNA解旋酶,该酶与霍利迪连接体相互作用并促进分支迁移。在本研究中,我们研究了RuvA、RuvB与霍利迪连接体之间形成的蛋白质-DNA复合物。如先前所示,RuvA蛋白在体外与合成的霍利迪连接体结合,形成一种特定的蛋白质-DNA复合物,可通过凝胶迁移试验检测到。我们现在表明,RuvA和RuvB的共同存在会导致该复合物发生超迁移,这表明形成了RuvAB-霍利迪连接体复合物。在没有RuvA的情况下,RuvB蛋白无法结合霍利迪连接体。只有在有利于其稳定性的条件下,例如在存在不能被RuvB水解的核苷三磷酸(腺苷5'-[γ-硫代]三磷酸)的情况下形成复合物时,才能通过凝胶迁移试验检测到RuvAB-霍利迪连接体复合物。相比之下,可被水解的核苷三磷酸(ATP、dATP、dCTP或TTP)会导致RuvAB介导的连接体分支迁移。这些结果表明,(RuvAB-ATP)-霍利迪连接体复合物的形成代表了分支迁移过程的第一步,并且分支迁移依赖于ATP水解。此外,我们表明,霍利迪连接体DNA比单链或线性双链DNA更能刺激RuvAB的ATP酶活性。

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