Wadsworth Center, New York State Department of Health, Albany, NY 12201-0509, USA.
Wadsworth Center, New York State Department of Health, Albany, NY 12201-0509, USA; Department of Biomedical Sciences, University at Albany, Albany, NY 12201-0509, USA.
Structure. 2013 Jan 8;21(1):20-31. doi: 10.1016/j.str.2012.11.005. Epub 2012 Dec 13.
Y-family polymerases help cells tolerate DNA damage by performing translesion synthesis opposite damaged DNA bases, yet they also have a high intrinsic error rate. We constructed chimeras of two closely related Y-family polymerases that display distinctly different activity profiles and found that the polypeptide linker that tethers the catalytic polymerase domain to the C-terminal DNA-binding domain is a major determinant of overall polymerase activity, nucleotide incorporation fidelity, and abasic site-bypass ability. Exchanging just 3 out of the 15 linker residues is sufficient to interconvert the polymerase activities tested. Crystal structures of four chimeras show that the conformation of the protein correlates with the identity of the interdomain linker sequence. Thus, residues that are more than 15 Å away from the active site are able to influence many aspects of polymerase activity by altering the relative orientations of the catalytic and DNA-binding domains.
Y 家族聚合酶通过在受损 DNA 碱基的对面进行跨损伤合成来帮助细胞耐受 DNA 损伤,但它们的固有错误率也很高。我们构建了两种密切相关的 Y 家族聚合酶的嵌合体,它们显示出明显不同的活性谱,并且发现将催化聚合酶结构域连接到 C 末端 DNA 结合结构域的多肽接头是整体聚合酶活性、核苷酸掺入保真度和碱基缺失位点旁路能力的主要决定因素。仅交换连接子中的 15 个残基中的 3 个就足以转换测试的聚合酶活性。四个嵌合体的晶体结构表明,蛋白质的构象与结构域间连接序列的身份相关。因此,距离活性位点超过 15Å 的残基能够通过改变催化和 DNA 结合结构域的相对取向来影响聚合酶活性的许多方面。