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首页> 外文期刊>Biophysical Journal >In silico studies of the African swine fever virus DNA polymerase X support an induced-fit mechanism
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In silico studies of the African swine fever virus DNA polymerase X support an induced-fit mechanism

机译:在对非洲猪瘟病毒DNA聚合酶X的计算机模拟研究中,它支持诱导拟合机制

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The African swine fever virus DNA polymerase X ( pol X), a member of the X family of DNA polymerases, is thought to be involved in base excision repair. Kinetics data indicate that pol X catalyzes DNA polymerization with low fidelity, suggesting a role in viral mutagenesis. Though pol X lacks the. ngers domain that binds the DNA in other members of the X family, it binds DNA tightly. To help interpret details of this interaction, molecular dynamics simulations of free pol X at different salt concentrations and of pol X bound to gapped DNA, in the presence and in the absence of the incoming nucleotide, are performed. Anchors for the simulations are two NMR structures of pol X without DNA and a model of one NMR structure plus DNA and incoming nucleotide. Our results show that, in its free form, pol X can exist in two stable conformations that interconvert to one another depending on the salt concentration. When gapped double stranded DNA is introduced near the active site, pol X prefers an open conformation, regardless of the salt concentration. Finally, under physiological conditions, in the presence of both gapped DNA and correct incoming nucleotide, and two divalent ions, the thumb subdomain of pol X undergoes a large conformational change, closing upon the DNA. These results predict for pol X a substrate-induced conformational change triggered by the presence of DNA and the correct incoming nucleotide in the active site, as in DNA polymerase beta. The simulations also suggest speci. c experiments ( e. g., for mutants Phe-102Ala, Val-120Gly, and Lys-85Val that may reveal crucial DNA binding and active-site organization roles) to further elucidate the. delity mechanism of pol X.
机译:非洲猪瘟病毒DNA聚合酶X(pol X)是DNA聚合酶X家族的成员,被认为参与碱基切除修复。动力学数据表明,pol X以低保真度催化DNA聚合,提示在病毒诱变中起作用。虽然pol X缺乏。与X家族其他成员的DNA结合的ngers域,它与DNA紧密结合。为了帮助解释这种相互作用的细节,在存在和不存在传入核苷酸的情况下,进行了不同盐浓度的游离pol X以及与空位DNA结合的pol X的分子动力学模拟。模拟的锚点是不带DNA的pol X的两个NMR结构,以及一个带有DNA和传入核苷酸的NMR结构的模型。我们的结果表明,pol X以其游离形式可以两种稳定的构型存在,这取决于盐的浓度相互转化。当在活性位点附近引入有缺口的双链DNA时,不管盐浓度如何,pol X都倾向于开放构象。最后,在生理条件下,在空缺的DNA和正确的进入核苷酸以及两个二价离子的存在下,pol X的拇指亚结构域经历了大的构象变化,并紧靠DNA。这些结果为pol X预测了由底物诱导的构象变化,该变化是由DNA的存在和活性位点中正确的进入核苷酸(如DNA聚合酶β)引起的。模拟还建议具体。 c实验(例如,对于突变Phe-102Ala,Val-120Gly和Lys-85Val可能揭示关键的DNA结合和活性位点组织作用)以进一步阐明。 pol X的欺诈机制。

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