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本文引用的文献

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Phosphonoformic acid inhibits viral replication by trapping the closed form of the DNA polymerase.膦甲酸通过捕获 DNA 聚合酶的闭合形式来抑制病毒复制。
J Biol Chem. 2011 Jul 15;286(28):25246-55. doi: 10.1074/jbc.M111.248864. Epub 2011 May 12.
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Distinct complexes of DNA polymerase I (Klenow fragment) for base and sugar discrimination during nucleotide substrate selection.DNA 聚合酶 I(Klenow 片段)在核苷酸底物选择过程中用于碱基和糖区分的不同复合物。
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Processive replication of single DNA molecules in a nanopore catalyzed by phi29 DNA polymerase.phi29 DNA 聚合酶在纳米孔中催化的单 DNA 分子的连续复制。
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Replication of individual DNA molecules under electronic control using a protein nanopore.使用蛋白质纳米孔在电子控制下复制单个 DNA 分子。
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Conformational transitions in DNA polymerase I revealed by single-molecule FRET.单分子荧光共振能量转移技术揭示的 DNA 聚合酶 I 的构象转变。
Proc Natl Acad Sci U S A. 2010 Jan 12;107(2):715-20. doi: 10.1073/pnas.0910909107. Epub 2009 Dec 18.
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Proofreading dynamics of a processive DNA polymerase.进行性DNA聚合酶的校对动力学
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7
Specific nucleotide binding and rebinding to individual DNA polymerase complexes captured on a nanopore.特定核苷酸与捕获在纳米孔上的单个DNA聚合酶复合物的结合及重新结合。
J Am Chem Soc. 2009 Mar 18;131(10):3772-8. doi: 10.1021/ja809663f.
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Sequence-specific detection of individual DNA polymerase complexes in real time using a nanopore.使用纳米孔实时对单个DNA聚合酶复合物进行序列特异性检测。
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9
Fingers-closing and other rapid conformational changes in DNA polymerase I (Klenow fragment) and their role in nucleotide selectivity.DNA聚合酶I(克列诺片段)中的手指闭合及其他快速构象变化及其在核苷酸选择性中的作用。
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10
The bacteriophage phi29 DNA polymerase.噬菌体φ29 DNA聚合酶
IUBMB Life. 2008 Jan;60(1):82-5. doi: 10.1002/iub.19.

直接观察单个 DNA 聚合酶复合物的转位。

Direct observation of translocation in individual DNA polymerase complexes.

机构信息

Department of Biomolecular Engineering, Baskin School of Engineering, University of California, Santa Cruz, California 95064, USA.

出版信息

J Biol Chem. 2012 Apr 13;287(16):13407-21. doi: 10.1074/jbc.M111.338418. Epub 2012 Feb 29.

DOI:10.1074/jbc.M111.338418
PMID:22378784
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3339981/
Abstract

Complexes of phi29 DNA polymerase and DNA fluctuate on the millisecond time scale between two ionic current amplitude states when captured atop the α-hemolysin nanopore in an applied field. The lower amplitude state is stabilized by complementary dNTP and thus corresponds to complexes in the post-translocation state. We have demonstrated that in the upper amplitude state, the DNA is displaced by a distance of one nucleotide from the post-translocation state. We propose that the upper amplitude state corresponds to complexes in the pre-translocation state. Force exerted on the template strand biases the complexes toward the pre-translocation state. Based on the results of voltage and dNTP titrations, we concluded through mathematical modeling that complementary dNTP binds only to the post-translocation state, and we estimated the binding affinity. The equilibrium between the two states is influenced by active site-proximal DNA sequences. Consistent with the assignment of the upper amplitude state as the pre-translocation state, a DNA substrate that favors the pre-translocation state in complexes on the nanopore is a superior substrate in bulk phase for pyrophosphorolysis. There is also a correlation between DNA sequences that bias complexes toward the pre-translocation state and the rate of exonucleolysis in bulk phase, suggesting that during DNA synthesis the pathway for transfer of the primer strand from the polymerase to exonuclease active site initiates in the pre-translocation state.

摘要

当 phi29 DNA 聚合酶和 DNA 复合物在施加电场的α-溶血素纳米孔顶部捕获时,它们在毫秒时间尺度上在两种离子电流幅度状态之间波动。较低的幅度状态由互补的 dNTP 稳定,因此对应于后转位状态的复合物。我们已经证明,在上幅度状态下,DNA 从后转位状态被推离一个核苷酸的距离。我们提出,上幅度状态对应于前转位状态的复合物。模板链上的力使复合物偏向于前转位状态。基于电压和 dNTP 滴定的结果,我们通过数学建模得出结论,互补的 dNTP 仅结合后转位状态,并且我们估计了结合亲和力。两种状态之间的平衡受活性位点近端 DNA 序列的影响。与将上幅度状态分配为前转位状态一致,在纳米孔上的复合物中有利于前转位状态的 DNA 底物在本体相中对于焦磷酸解是更好的底物。优先与复合物倾向于前转位状态的 DNA 序列与本体相中核酸外切酶活性的外切核酸酶活性之间也存在相关性,这表明在 DNA 合成过程中,引物链从聚合酶转移到核酸外切酶活性位点的途径在前转位状态下开始。