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DNA修复核酸内切酶APE-1切割底物的“移动金属机制”

A "moving metal mechanism" for substrate cleavage by the DNA repair endonuclease APE-1.

作者信息

Oezguen Numan, Schein Catherine H, Peddi Srinivasa R, Power Trevor D, Izumi Tadahide, Braun Werner

机构信息

Department of Biochemistry and Molecular Biology, University of Texas Medical Branch, Galveston, Texas 77555-0857, USA.

出版信息

Proteins. 2007 Jul 1;68(1):313-23. doi: 10.1002/prot.21397.

Abstract

Apurinic/apyrimidinic endonuclease (APE-1) is essential for base excision repair (BER) of damaged DNA. Here molecular dynamics (MD) simulations of APE1 complexed with cleaved and uncleaved damaged DNA were used to determine the role and position of the metal ion(s) in the active site before and after DNA cleavage. The simulations started from an energy minimized wild-type structure of the metal-free APE1/damaged-DNA complex (1DE8). A grid search with one Mg2+ ion located two low energy clusters of Mg2+ consistent with the experimentally determined metal ion positions. At the start of the longer MD simulations, Mg2+ ions were placed at different positions as seen in the crystal structures and the movement of the ion was followed over the course of the trajectory. Our analysis suggests a "moving metal mechanism" in which one Mg2+ ion moves from the B- (more buried) to the A-site during substrate cleavage. The anticipated inversion of the phosphate oxygens occurs during the in-line cleavage reaction. Experimental results, which show competition between Ca2+ and Mg2+ for catalyzing the reaction, and high concentrations of Mg2+ are inhibitory, indicate that both sites cannot be simultaneously occupied for maximal activity.

摘要

脱嘌呤/脱嘧啶内切酶(APE-1)对于受损DNA的碱基切除修复(BER)至关重要。在此,通过对与切割和未切割的受损DNA复合的APE1进行分子动力学(MD)模拟,以确定DNA切割前后活性位点中金属离子的作用和位置。模拟从无金属的APE1/受损DNA复合物(1DE8)的能量最小化野生型结构开始。对一个Mg2+离子进行网格搜索,确定了两个与实验确定的金属离子位置一致的低能量Mg2+簇。在较长的MD模拟开始时,按照晶体结构中观察到的情况将Mg2+离子置于不同位置,并在轨迹过程中跟踪离子的移动。我们的分析表明存在一种“移动金属机制”,即在底物切割过程中,一个Mg2+离子从B位点(埋藏更深)移动到A位点。在直接切割反应过程中会发生预期的磷酸氧反转。实验结果表明,Ca2+和Mg2+在催化反应时存在竞争,且高浓度的Mg2+具有抑制作用,这表明两个位点不能同时被占据以实现最大活性。

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