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酵母DNA聚合酶η催化核心对无碱基位点的旁路动力学分析

Kinetic analysis of bypass of abasic site by the catalytic core of yeast DNA polymerase eta.

作者信息

Yang Juntang, Wang Rong, Liu Binyan, Xue Qizhen, Zhong Mengyu, Zeng Hao, Zhang Huidong

机构信息

Institute of Toxicology, College of Preventive Medicine, Third Military Medical University, Chongqing, PR China.

Institute of Toxicology, College of Preventive Medicine, Third Military Medical University, Chongqing, PR China.

出版信息

Mutat Res. 2015 Sep;779:134-43. doi: 10.1016/j.mrfmmm.2015.07.001. Epub 2015 Jul 9.

Abstract

Abasic sites (Apurinic/apyrimidinic (AP) sites), produced ∼ 50,000 times/cell/day, are very blocking and miscoding. To better understand miscoding mechanisms of abasic site for yeast DNA polymerase η, pre-steady-state nucleotide incorporation and LC-MS/MS sequence analysis of extension product were studied using pol η(core) (catalytic core, residues 1-513), which can completely eliminate the potential effects of the C-terminal C2H2 motif of pol η on dNTP incorporation. The extension beyond the abasic site was very inefficient. Compared with incorporation of dCTP opposite G, the incorporation efficiencies opposite abasic site were greatly reduced according to the order of dGTP > dATP >> dCTP and dTTP. Pol η(core) showed no fast burst phase for any incorporation opposite G or abasic site, suggesting that the catalytic step is not faster than the dissociation of polymerase from DNA. LC-MS/MS sequence analysis of extension products showed that 53% products were dGTP misincorporation, 33% were dATP and 14% were -1 frameshift, indicating that Pol η(core) bypasses abasic site by a combined G-rule, A-rule and -1 frameshift deletions. Compared with full-length pol η, pol η(core) relatively reduced the efficiency of incorporation of dCTP opposite G, increased the efficiencies of dNTP incorporation opposite abasic site and the exclusive incorporation of dGTP opposite abasic site, but inhibited the extension beyond abasic site, and increased the priority in extension of A: abasic site relative to G: abasic site. This study provides further understanding in the mutation mechanism of abasic sites for yeast DNA polymerase η.

摘要

无碱基位点(脱嘌呤/脱嘧啶(AP)位点),每天每个细胞产生约50000次,具有很强的阻断作用和错配编码能力。为了更好地理解酵母DNA聚合酶η对无碱基位点的错配编码机制,我们使用pol η(核心)(催化核心,第1至513位残基)研究了延伸产物的预稳态核苷酸掺入和LC-MS/MS序列分析,该酶可完全消除pol η C末端C2H2基序对dNTP掺入的潜在影响。越过无碱基位点的延伸效率非常低。与G对面掺入dCTP相比,根据dGTP > dATP >> dCTP和dTTP的顺序,无碱基位点对面的掺入效率大大降低。对于G或无碱基位点对面的任何掺入,pol η(核心)均未显示快速爆发阶段,这表明催化步骤不比聚合酶从DNA上解离快。延伸产物的LC-MS/MS序列分析表明,53%的产物是dGTP错掺入,33%是dATP,14%是-1移码,这表明Pol η(核心)通过组合的G规则、A规则和-1移码缺失绕过无碱基位点。与全长pol η相比,pol η(核心)相对降低了G对面dCTP的掺入效率,提高了无碱基位点对面dNTP的掺入效率以及无碱基位点对面dGTP的专一掺入效率,但抑制了越过无碱基位点的延伸,并增加了A:无碱基位点相对于G:无碱基位点延伸的优先级。本研究进一步加深了对酵母DNA聚合酶η无碱基位点突变机制的理解。

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