Khanduja Jasbeer Singh, Tripathi Pankaj, Muniyappa K
Department of Biochemistry, Indian Institute of Science, Bangalore 560012, India.
Biochemistry. 2009 Jan 13;48(1):27-40. doi: 10.1021/bi8016526.
A central step in the process of homologous genetic recombination is the strand exchange between two homologous DNA molecules, leading to the formation of the Holliday junction intermediate. Several lines of evidence, both in vitro and in vivo, suggest a concerted role for the Escherichia coli RuvABC protein complex in the process of branch migration and the resolution of the Holliday junctions. A number of investigations have examined the role of RuvA protein in branch migration of the Holliday junction in conjunction with its natural cellular partner, RuvB. However, it remains unclear whether the RuvABC protein complex or its individual subunits function differently in the context of DNA repair and homologous recombination. In this study, we have specifically investigated the function of RuvA protein using Holliday junctions containing either homologous or heterologous arms. Our data show that Mycobacterium tuberculosis ruvA complements E. coli DeltaruvA mutants for survival to genotoxic stress caused by different DNA-damaging agents, and the purified RuvA protein binds HJ in preference to any other substrates. Strikingly, our analysis revealed two distinct types of structural distortions caused by M. tuberculosis RuvA between the homologous and heterologous Holliday junctions. We interpret these data as evidence that local distortion of base pairing in the arms of homologous Holliday junctions by RuvA might augment branch migration catalyzed by RuvB. The biological significance of two modes of structural distortion caused by M. tuberculosis RuvA and the implications for its role in DNA repair and homologous recombination are discussed.
同源基因重组过程中的一个核心步骤是两个同源DNA分子之间的链交换,从而导致霍利迪连接中间体的形成。体外和体内的多条证据表明,大肠杆菌RuvABC蛋白复合物在分支迁移和霍利迪连接的拆分过程中发挥协同作用。许多研究探讨了RuvA蛋白与其天然细胞伴侣RuvB一起在霍利迪连接的分支迁移中的作用。然而,在DNA修复和同源重组的背景下,RuvABC蛋白复合物或其单个亚基的功能是否不同仍不清楚。在本研究中,我们使用含有同源或异源臂的霍利迪连接专门研究了RuvA蛋白的功能。我们的数据表明,结核分枝杆菌ruvA可弥补大肠杆菌DeltaruvA突变体对不同DNA损伤剂引起的基因毒性应激的耐受性,并且纯化的RuvA蛋白优先结合HJ而非任何其他底物。引人注目的是,我们的分析揭示了结核分枝杆菌RuvA在同源和异源霍利迪连接之间引起的两种不同类型的结构畸变。我们将这些数据解释为同源霍利迪连接臂中碱基配对的局部畸变可能增强RuvB催化的分支迁移的证据。讨论了结核分枝杆菌RuvA引起的两种结构畸变模式的生物学意义及其在DNA修复和同源重组中的作用。