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The human CTF4-orthologue AND-1 interacts with DNA polymerase α/primase via its unique C-terminal HMG box.人类 CTF4 同源物 AND-1 通过其独特的 C 末端 HMG 盒与 DNA 聚合酶 α/引发酶相互作用。
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2
Crystal structure of the human Polϵ B-subunit in complex with the C-terminal domain of the catalytic subunit.人源Polϵ B亚基与催化亚基C末端结构域复合物的晶体结构
J Biol Chem. 2017 Sep 22;292(38):15717-15730. doi: 10.1074/jbc.M117.792705. Epub 2017 Jul 26.
3
Eukaryotic DNA Replication Fork.真核生物DNA复制叉
Annu Rev Biochem. 2017 Jun 20;86:417-438. doi: 10.1146/annurev-biochem-061516-044709. Epub 2017 Mar 1.
4
Elaborated Action of the Human Primosome.人类引发体的精细作用
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Processing of X-ray diffraction data collected in oscillation mode.振荡模式下收集的X射线衍射数据的处理。
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6
DNA Polymerases Divide the Labor of Genome Replication.DNA聚合酶分工进行基因组复制。
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Divalent ions attenuate DNA synthesis by human DNA polymerase α by changing the structure of the template/primer or by perturbing the polymerase reaction.二价离子通过改变模板/引物的结构或干扰聚合酶反应来减弱人DNA聚合酶α的DNA合成。
DNA Repair (Amst). 2016 Jul;43:24-33. doi: 10.1016/j.dnarep.2016.05.017. Epub 2016 May 12.
8
The antitumor toxin CD437 is a direct inhibitor of DNA polymerase α.抗肿瘤毒素CD437是DNA聚合酶α的直接抑制剂。
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9
Human DNA polymerase α in binary complex with a DNA:DNA template-primer.与DNA:DNA模板引物形成二元复合物的人类DNA聚合酶α。
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DNA polymerase-α regulates the activation of type I interferons through cytosolic RNA:DNA synthesis.DNA聚合酶α通过胞质RNA:DNA合成调节I型干扰素的激活。
Nat Immunol. 2016 May;17(5):495-504. doi: 10.1038/ni.3409. Epub 2016 Mar 28.

人类 DNA 聚合酶 α 的活性和保真度取决于引物结构。

Activity and fidelity of human DNA polymerase α depend on primer structure.

机构信息

From the Eppley Institute for Research in Cancer and Allied Diseases, Fred and Pamela Buffett Cancer Center, and.

the Departments of Pharmacology and Molecular Biophysics and Biochemistry, Yale University School of Medicine, New Haven, Connecticut 06510.

出版信息

J Biol Chem. 2018 May 4;293(18):6824-6843. doi: 10.1074/jbc.RA117.001074. Epub 2018 Mar 19.

DOI:10.1074/jbc.RA117.001074
PMID:29555682
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5936803/
Abstract

DNA polymerase α (Polα) plays an important role in genome replication. In a complex with primase, Polα synthesizes chimeric RNA-DNA primers necessary for replication of both chromosomal DNA strands. During RNA primer extension with deoxyribonucleotides, Polα needs to use double-stranded helical substrates having different structures. Here, we provide a detailed structure-function analysis of human Polα's interaction with dNTPs and DNA templates primed with RNA, chimeric RNA-DNA, or DNA. We report the crystal structures of two ternary complexes of the Polα catalytic domain containing dCTP, a DNA template, and either a DNA or an RNA primer. Unexpectedly, in the ternary complex with a DNA:DNA duplex and dCTP, the "fingers" subdomain of Polα is in the open conformation. Polα induces conformational changes in the DNA and hybrid duplexes to produce the universal double helix form. Pre-steady-state kinetic studies indicated for both duplex types that chemical catalysis rather than product release is the rate-limiting step. Moreover, human Polα extended DNA primers with higher efficiency but lower processivity than it did with RNA and chimeric primers. Polα has a substantial propensity to make errors during DNA synthesis, and we observed that its fidelity depends on the type of sugar at the primer 3'-end. A detailed structural comparison of Polα with other replicative DNA polymerases disclosed common features and some differences, which may reflect the specialization of each polymerase in genome replication.

摘要

DNA 聚合酶 α(Polα)在基因组复制中发挥着重要作用。在与引物酶形成复合物后,Polα 合成了用于两条染色体 DNA 链复制的嵌合 RNA-DNA 引物。在使用脱氧核苷酸延伸 RNA 引物时,Polα 需要使用具有不同结构的双链螺旋底物。在这里,我们对人 Polα 与 dNTP 以及用 RNA、嵌合 RNA-DNA 或 DNA 引发的 DNA 模板之间的相互作用进行了详细的结构-功能分析。我们报告了包含 dCTP、DNA 模板和 DNA 或 RNA 引物的 Polα 催化结构域的两个三元复合物的晶体结构。出乎意料的是,在含有 DNA:DNA 双链体和 dCTP 的三元复合物中,Polα 的“手指”亚结构域处于开放构象。Polα 诱导 DNA 和杂交双链体发生构象变化,产生通用的双链螺旋形式。稳态前动力学研究表明,对于这两种双链体类型,化学催化而不是产物释放是限速步骤。此外,人 Polα 以比 RNA 和嵌合引物更高的效率但更低的持续性延伸 DNA 引物。Polα 在 DNA 合成过程中具有很大的出错倾向,我们观察到其保真度取决于引物 3'-末端糖的类型。Polα 与其他复制性 DNA 聚合酶的详细结构比较揭示了共同特征和一些差异,这可能反映了每种聚合酶在基因组复制中的专业化。