Eppley Institute for Research in Cancer and Allied Diseases, Fred & Pamela Buffett Cancer Center, University of Nebraska Medical Center, Omaha, NE 68198.
Proc Natl Acad Sci U S A. 2022 Apr 26;119(17):e2111744119. doi: 10.1073/pnas.2111744119. Epub 2022 Apr 25.
Human DNA polymerase α (Polα) does not possess proofreading ability and plays an important role in genome replication and mutagenesis. Polα extends the RNA primers generated by primase and provides a springboard for loading other replication factors. Here we provide the structural and functional analysis of the human Polα interaction with a mismatched template:primer. The structure of the human Polα catalytic domain in the complex with an incoming deoxycytidine triphosphate (dCTP) and the template:primer containing a T-C mismatch at the growing primer terminus was solved at a 2.9 Å resolution. It revealed the absence of significant distortions in the active site and in the conformation of the substrates, except the primer 3′-end. The T-C mismatch acquired a planar geometry where both nucleotides moved toward each other by 0.4 Å and 0.7 Å, respectively, and made one hydrogen bond. The binding studies conducted at a physiological salt concentration revealed that Polα has a low affinity to DNA and is not able to discriminate against a mispaired template:primer in the absence of deoxynucleotide triphosphate (dNTP). Strikingly, in the presence of cognate dNTP, Polα showed a more than 10-fold higher selectivity for a correct duplex versus a mismatched one. According to pre-steady-state kinetic studies, human Polα extends the T-C mismatch with a 249-fold lower efficiency due to reduction of the polymerization rate constant by 38-fold and reduced affinity to the incoming nucleotide by 6.6-fold. Thus, a mismatch at the postinsertion site affects all factors important for primer extension: affinity to both substrates and the rate of DNA polymerization.
人类 DNA 聚合酶α(Polα)不具有校对能力,在基因组复制和突变中起着重要作用。Polα 延伸由引物酶产生的 RNA 引物,并为加载其他复制因子提供跳板。在这里,我们提供了人类 Polα 与错配模板-引物相互作用的结构和功能分析。在 2.9 Å 的分辨率下,解决了人 Polα 催化结构域与进入的脱氧胞苷三磷酸(dCTP)和含有生长引物末端 T-C 错配的模板-引物复合物的结构。它揭示了活性位点和底物构象中没有明显的扭曲,除了引物 3′-末端。T-C 错配获得了平面几何形状,两个核苷酸分别向彼此移动了 0.4 Å 和 0.7 Å,并形成了一个氢键。在生理盐浓度下进行的结合研究表明,Polα 与 DNA 的亲和力低,并且在没有脱氧核苷酸三磷酸(dNTP)的情况下无法区分错配的模板-引物。引人注目的是,在有同源 dNTP 的情况下,Polα 对正确双链体的选择性比错配体高出 10 倍以上。根据预稳态动力学研究,由于聚合速率常数降低 38 倍和与进入核苷酸的亲和力降低 6.6 倍,人类 Polα 以 249 倍的低效率延伸 T-C 错配。因此,插入后位置的错配会影响所有对引物延伸重要的因素:与两种底物的亲和力和 DNA 聚合的速率。