Vijayakumar Sangeetha, Chapados Brian R, Schmidt Kristina H, Kolodner Richard D, Tainer John A, Tomkinson Alan E
Radiation Oncology Research Laboratory, Department of Radiation Oncology and The Marlene and Stewart Greenebaum Cancer Center, University of Maryland School of Medicine, Baltimore, MD 21201-1509, USA.
Nucleic Acids Res. 2007;35(5):1624-37. doi: 10.1093/nar/gkm006. Epub 2007 Feb 18.
There is compelling evidence that proliferating cell nuclear antigen (PCNA), a DNA sliding clamp, co-ordinates the processing and joining of Okazaki fragments during eukaryotic DNA replication. However, a detailed mechanistic understanding of functional PCNA:ligase I interactions has been incomplete. Here we present the co-crystal structure of yeast PCNA with a peptide encompassing the conserved PCNA interaction motif of Cdc9, yeast DNA ligase I. The Cdc9 peptide contacts both the inter-domain connector loop (IDCL) and residues near the C-terminus of PCNA. Complementary mutational and biochemical results demonstrate that these two interaction interfaces are required for complex formation both in the absence of DNA and when PCNA is topologically linked to DNA. Similar to the functionally homologous human proteins, yeast RFC interacts with and inhibits Cdc9 DNA ligase whereas the addition of PCNA alleviates inhibition by RFC. Here we show that the ability of PCNA to overcome RFC-mediated inhibition of Cdc9 is dependent upon both the IDCL and the C-terminal interaction interfaces of PCNA. Together these results demonstrate the functional significance of the beta-zipper structure formed between the C-terminal domain of PCNA and Cdc9 and reveal differences in the interactions of FEN-1 and Cdc9 with the two PCNA interfaces that may contribute to the co-ordinated, sequential action of these enzymes.
有确凿证据表明,增殖细胞核抗原(PCNA)作为一种DNA滑动夹,在真核生物DNA复制过程中协调冈崎片段的加工与连接。然而,对于功能性PCNA与连接酶I相互作用的详细机制理解并不完整。在此,我们展示了酵母PCNA与包含酵母DNA连接酶I(Cdc9)保守PCNA相互作用基序的肽段的共晶体结构。Cdc9肽段与PCNA的结构域间连接环(IDCL)以及PCNA C末端附近的残基均有接触。互补的突变和生化结果表明,无论是在无DNA的情况下,还是当PCNA与DNA发生拓扑连接时,这两个相互作用界面对于复合物的形成都是必需的。与功能同源的人类蛋白类似,酵母复制因子C(RFC)与Cdc9 DNA连接酶相互作用并抑制其活性,而PCNA的加入可减轻RFC的抑制作用。在此我们表明,PCNA克服RFC介导的对Cdc9抑制作用的能力取决于PCNA的IDCL和C末端相互作用界面。这些结果共同证明了PCNA C末端结构域与Cdc9之间形成的β-拉链结构的功能重要性,并揭示了FEN-1和Cdc9与PCNA的两个界面相互作用的差异,这可能有助于这些酶的协同、顺序作用。