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对DNA聚合酶β脱氧核糖磷酸裂解酶机制的结构洞察。

Structural insight into the DNA polymerase beta deoxyribose phosphate lyase mechanism.

作者信息

Prasad Rajendra, Batra Vinod K, Yang Xiao-Ping, Krahn Joseph M, Pedersen Lars C, Beard William A, Wilson Samuel H

机构信息

Laboratory of Structural Biology, NIEHS, National Institutes of Health, Research Triangle Park, NC 27709, USA.

出版信息

DNA Repair (Amst). 2005 Dec 8;4(12):1347-57. doi: 10.1016/j.dnarep.2005.08.009. Epub 2005 Sep 19.

Abstract

A large number of biochemical and genetic studies have demonstrated the involvement of DNA polymerase beta (Pol beta) in mammalian base excision repair (BER). Pol beta participates in BER sub-pathways by contributing gap filling DNA synthesis and lyase removal of the 5'-deoxyribose phosphate (dRP) group from the cleaved abasic site. To better understand the mechanism of the dRP lyase reaction at an atomic level, we determined a crystal structure of Pol beta complexed with 5'-phosphorylated abasic sugar analogs in nicked DNA. This DNA ligand represents a potential BER intermediate. The crystal structure reveals that the dRP group is bound in a non-catalytic binding site. The catalytic nucleophile in the dRP lyase reaction, Lys72, and all other potential secondary nucleophiles, are too far away to participate in nucleophilic attack on the C1' of the sugar. An approximate model of the dRP group in the expected catalytic binding site suggests that a rotation of 120 degrees about the dRP 3'-phosphate is required to position the epsilon-amino Lys72 close to the dRP C1'. This model also suggests that several other side chains are in position to facilitate the beta-elimination reaction. From results of mutational analysis of key residues in the dRP lyase active site, it appears that the substrate dRP can be stabilized in the observed non-catalytic binding conformation, hindering dRP lyase activity.

摘要

大量的生化和遗传学研究表明,DNA聚合酶β(Polβ)参与哺乳动物碱基切除修复(BER)过程。Polβ通过填补缺口的DNA合成以及从切割后的无碱基位点去除5'-脱氧核糖磷酸(dRP)基团的裂解酶活性,参与BER子途径。为了在原子水平上更好地理解dRP裂解酶反应的机制,我们确定了与带缺口DNA中5'-磷酸化无碱基糖类似物复合的Polβ的晶体结构。这种DNA配体代表一种潜在的BER中间体。晶体结构显示,dRP基团结合在一个非催化结合位点。dRP裂解酶反应中的催化亲核试剂Lys72以及所有其他潜在的二级亲核试剂,距离太远,无法参与对糖的C1'的亲核攻击。预期催化结合位点中dRP基团的近似模型表明,dRP 3'-磷酸需要围绕其旋转120度,才能使ε-氨基Lys72靠近dRP C1'。该模型还表明,其他几个侧链也处于便于β-消除反应的位置。从dRP裂解酶活性位点关键残基的突变分析结果来看,底物dRP似乎可以稳定在观察到的非催化结合构象中,从而阻碍dRP裂解酶活性。

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