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人类前导链DNA聚合酶ε全酶的校对机制。

The proofreading mechanism of the human leading strand DNA polymerase ϵ holoenzyme.

作者信息

Wang Feng, He Qing, O'Donnell Michael E, Li Huilin

出版信息

bioRxiv. 2025 Apr 12:2025.04.11.648458. doi: 10.1101/2025.04.11.648458.

Abstract

The eukaryotic leading strand DNA polymerase epsilon is a dual function enzyme with a proofreading exonuclease site located 40 angstroms from the DNA synthesizing polymerase site. Errors in Pol epsilon proofreading can cause various mutations, including C to G transversions, the most prevalent mutation in cancers and genetic diseases. Pol epsilon interacts with all three subunits of the PCNA ring to assemble a functional holoenzyme. Despite previous studies on proofreading of several polymerases, how Pol epsilon, or any Pol complexed with its sliding clamp proofreads a mismatch generated in situ has been unknown. We show here by cryo-EM that a template/primer DNA substrate with a pre-existing mismatch cannot enter the exo site of Pol epsilon/PCNA holoenzyme, but a mismatch generated in the Pol site yields three proofreading intermediates of Pol epsilon/PCNA holoenzyme. These intermediates reveal how the mismatch is dislodged from the Pol site, how the DNA unwinds 6 base pairs and how the unpaired primer 3'-end is inserted into the exo site for cleavage. These results unexpectedly demonstrate that PCNA imposes strong steric constraints that extend unwinding and direct the trajectory of mismatched DNA, and that this trajectory is dramatically different than for Pol epsilon in the absence of PCNA. These findings suggest a physiologically relevant proofreading mechanism for the human Pol epsilon/PCNA holoenzyme.

摘要

真核生物前导链DNA聚合酶ε是一种具有双重功能的酶,其校对核酸外切酶位点位于距DNA合成聚合酶位点40埃处。Pol ε校对过程中的错误会导致各种突变,包括C到G的颠换,这是癌症和遗传疾病中最常见的突变。Pol ε与PCNA环的所有三个亚基相互作用,以组装功能性全酶。尽管之前对几种聚合酶的校对进行了研究,但Pol ε或任何与其滑动夹钳复合的Pol如何校对原位产生的错配一直未知。我们在此通过冷冻电镜显示,带有预先存在错配的模板/引物DNA底物无法进入Pol ε/PCNA全酶的外切位点,但在Pol位点产生的错配会产生Pol ε/PCNA全酶的三种校对中间体。这些中间体揭示了错配如何从Pol位点被去除、DNA如何解旋6个碱基对以及未配对的引物3'端如何插入外切位点进行切割。这些结果出乎意料地表明,PCNA施加了强大的空间限制,延长了解旋并指导错配DNA的轨迹,并且该轨迹与没有PCNA时的Pol ε的轨迹显著不同。这些发现为人类Pol ε/PCNA全酶提出了一种生理相关的校对机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4bfd/12027367/250167a755f5/nihpp-2025.04.11.648458v1-f0001.jpg

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