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核酸内切酶IV对DNA脱嘌呤-脱嘧啶位点的结合与切除

DNA apurinic-apyrimidinic site binding and excision by endonuclease IV.

作者信息

Garcin Elsa D, Hosfield David J, Desai Sunil A, Haas Brian J, Björas Magnar, Cunningham Richard P, Tainer John A

机构信息

Department of Molecular Biology and Skaggs Institute for Chemical Biology, The Scripps Research Institute, 10550 North Torrey Pines Road, MB4 La Jolla, California 92037, USA.

出版信息

Nat Struct Mol Biol. 2008 May;15(5):515-22. doi: 10.1038/nsmb.1414. Epub 2008 Apr 13.

Abstract

Escherichia coli endonuclease IV is an archetype for an abasic or apurinic-apyrimidinic endonuclease superfamily crucial for DNA base excision repair. Here biochemical, mutational and crystallographic characterizations reveal a three-metal ion mechanism for damage binding and incision. The 1.10-A resolution DNA-free and the 2.45-A resolution DNA-substrate complex structures capture substrate stabilization by Arg37 and reveal a distorted Zn3-ligand arrangement that reverts, after catalysis, to an ideal geometry suitable to hold rather than release cleaved DNA product. The 1.45-A resolution DNA-product complex structure shows how Tyr72 caps the active site, tunes its dielectric environment and promotes catalysis by Glu261-activated hydroxide, bound to two Zn2+ ions throughout catalysis. These structural, mutagenesis and biochemical results suggest general requirements for abasic site removal in contrast to features specific to the distinct endonuclease IV alpha-beta triose phosphate isomerase (TIM) barrel and APE1 four-layer alpha-beta folds of the apurinic-apyrimidinic endonuclease families.

摘要

大肠杆菌内切核酸酶IV是无碱基或脱嘌呤-脱嘧啶内切核酸酶超家族的原型,对DNA碱基切除修复至关重要。本文通过生化、突变和晶体学表征揭示了损伤结合和切割的三金属离子机制。1.10埃分辨率的无DNA结构和2.45埃分辨率的DNA底物复合物结构捕获了由Arg37介导的底物稳定作用,并揭示了一种扭曲的Zn3配体排列,催化后该排列恢复为适合保留而非释放切割后的DNA产物的理想几何结构。1.45埃分辨率的DNA产物复合物结构展示了Tyr72如何封闭活性位点、调节其介电环境,并通过在整个催化过程中与两个Zn2+离子结合的Glu261激活的氢氧化物促进催化作用。这些结构、诱变和生化结果表明了与无碱基位点去除相关的一般要求,这与脱嘌呤-脱嘧啶内切核酸酶家族中不同的内切核酸酶IVα-β磷酸丙糖异构酶(TIM)桶状结构和APE1四层α-β折叠结构所特有的特征形成对比。

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