Nash Rebekah Potts, Habibi Sohrab, Cheng Yuan, Lujan Scott A, Redinbo Matthew R
Department of Chemistry, University of North Carolina, Chapel Hill, CB 3290 and Department of Biochemistry and Biophysics, University of North Carolina, Chapel Hill, CB 7260, Chapel Hill, NC 27599, USA.
Nucleic Acids Res. 2010 Sep;38(17):5929-43. doi: 10.1093/nar/gkq303. Epub 2010 May 6.
Bacteria expand their genetic diversity, spread antibiotic resistance genes, and obtain virulence factors through the highly coordinated process of conjugative plasmid transfer (CPT). A plasmid-encoded relaxase enzyme initiates and terminates CPT by nicking and religating the transferred plasmid in a sequence-specific manner. We solved the 2.3 A crystal structure of the relaxase responsible for the spread of the resistance plasmid pCU1 and determined its DNA binding and nicking capabilities. The overall fold of the pCU1 relaxase is similar to that of the F plasmid and plasmid R388 relaxases. However, in the pCU1 structure, the conserved tyrosine residues (Y18,19,26,27) that are required for DNA nicking and religation were displaced up to 14 A out of the relaxase active site, revealing a high degree of mobility in this region of the enzyme. In spite of this flexibility, the tyrosines still cleaved the nic site of the plasmid's origin of transfer, and did so in a sequence-specific, metal-dependent manner. Unexpectedly, the pCU1 relaxase lacked the sequence-specific DNA binding previously reported for the homologous F and R388 relaxase enzymes, despite its high sequence and structural similarity with both proteins. In summary, our work outlines novel structural and functional aspects of the relaxase-mediated conjugative transfer of plasmid pCU1.
细菌通过接合性质粒转移(CPT)这一高度协调的过程来扩展其遗传多样性、传播抗生素抗性基因并获得毒力因子。一种质粒编码的松弛酶通过以序列特异性方式切割和重新连接转移的质粒来启动和终止CPT。我们解析了负责抗性质粒pCU1传播的松弛酶的2.3埃晶体结构,并确定了其DNA结合和切割能力。pCU1松弛酶的整体折叠与F质粒和质粒R388松弛酶相似。然而,在pCU1结构中,DNA切割和重新连接所需的保守酪氨酸残基(Y18、19、26、27)从松弛酶活性位点位移了多达14埃,揭示了该酶在这一区域具有高度的灵活性。尽管具有这种灵活性,酪氨酸仍以序列特异性、金属依赖性方式切割了质粒转移起点的切口位点。出乎意料的是,尽管pCU1松弛酶与同源的F和R388松弛酶具有高度的序列和结构相似性,但它缺乏先前报道的同源F和R388松弛酶所具有的序列特异性DNA结合能力。总之,我们的工作概述了松弛酶介导的质粒pCU1接合转移的新结构和功能方面。