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不同二价阳离子对RB69 DNA聚合酶动力学和保真度的影响。

Effect of Different Divalent Cations on the Kinetics and Fidelity of RB69 DNA Polymerase.

作者信息

Vashishtha Ashwani Kumar, Konigsberg William H

机构信息

Department of Molecular Biophysics and Biochemistry, Yale University , New Haven, Connecticut 06520-8024, United States.

出版信息

Biochemistry. 2016 May 10;55(18):2661-70. doi: 10.1021/acs.biochem.5b01350. Epub 2016 Apr 28.

Abstract

Although Mg(2+) is the cation that functions as the cofactor for the nucleotidyl transfer reaction for almost all DNA polymerases, Mn(2+) can also serve, but when it does, the degree of base discrimination exhibited by most DNA polymerases (pols) is diminished. Metal ions other than Mg(2+) or Mn(2+) can also act as cofactors depending on the specific DNA polymerase. Here, we tested the ability of several divalent metal ions to substitute for Mg(2+) or Mn(2+) with RB69 DNA polymerase (RB69pol), a model B-family pol. Our choice of metal ions was based on previous studies with other DNA pols. Co(2+), and to a lesser extent Ni(2+), were the only cations among those tested besides Mg(2+) and Mn(2+) that could serve as cofactors with RB69pol. The incorporation efficiency of correct dNMPs increased by 5-fold with Co(2+), relative to that of Mg(2+). The incorporation efficiencies of incorrect dNMPs increased by 2-17-fold with Co(2+), relative to that with Mg(2+) depending on the incoming dNTP. Base selectivity was reduced even further with Mn(2+) compared to that observed with Co(2+). Substitution of Mn(2+), Co(2+), or Ni(2+) for Mg(2+) reduced the exonuclease activity of RB69pol by 2-, 6-, and 33-fold, respectively, contributing to the frequency of misincorporation. In addition, Co(2+) and Mn(2+) were better able to extend a primer past a mismatch than Mg(2+). Finally, Co(2+) and Mn(2+) enhanced ground-state binding of both correct and incorrect dNTPs to RB69pol:dideoxy-terminated primer-template complexes.

摘要

尽管Mg(2+)是几乎所有DNA聚合酶核苷酸转移反应的辅因子阳离子,但Mn(2+)也能发挥作用,不过当Mn(2+)发挥作用时,大多数DNA聚合酶(pol)表现出的碱基识别程度会降低。除Mg(2+)或Mn(2+)之外的其他金属离子也可作为辅因子,这取决于特定的DNA聚合酶。在此,我们用B族模式聚合酶RB69 DNA聚合酶(RB69pol)测试了几种二价金属离子替代Mg(2+)或Mn(2+)的能力。我们对金属离子的选择基于先前对其他DNA聚合酶的研究。除Mg(2+)和Mn(2+)外,Co(2+)以及程度稍低的Ni(2+)是所测试的阳离子中仅有的可作为RB69pol辅因子的离子。与Mg(2+)相比,Co(2+)存在时正确dNMP的掺入效率提高了5倍。与Mg(2+)相比,Co(2+)存在时错误dNMP的掺入效率提高了2至17倍,具体取决于进入的dNTP。与Co(2+)存在时相比,Mn(2+)存在时碱基选择性进一步降低。用Mn(2+)、Co(2+)或Ni(2+)替代Mg(2+)分别使RB69pol的核酸外切酶活性降低了2倍、6倍和33倍,这导致了错配掺入的频率。此外,与Mg(2+)相比,Co(2+)和Mn(2+)更能使引物延伸越过错配处。最后,Co(2+)和Mn(2+)增强了正确和错误dNTP与RB69pol:双脱氧末端引物-模板复合物的基态结合。

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