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尿嘧啶DNA糖基化酶催化反应的动力学同位素效应研究:氧鎓离子-尿嘧啶阴离子中间体的证据

Kinetic isotope effect studies of the reaction catalyzed by uracil DNA glycosylase: evidence for an oxocarbenium ion-uracil anion intermediate.

作者信息

Werner R M, Stivers J T

机构信息

Center for Advanced Research in Biotechnology of the University of Maryland Biotechnology Institutes and National Institute of Standards and Technology, 9600 Gudelsky Drive, Rockville, Maryland 20850, USA.

出版信息

Biochemistry. 2000 Nov 21;39(46):14054-64. doi: 10.1021/bi0018178.

DOI:10.1021/bi0018178
PMID:11087352
Abstract

The DNA repair enzyme uracil DNA glycosylase catalyzes the first step in the uracil base excision repair pathway, the hydrolytic cleavage of the N-glycosidic bond of deoxyuridine in DNA. Here we report kinetic isotope effect (KIE) measurements that have allowed the determination of the transition-state structure for this important reaction. The small primary (13)C KIE (=1.010 +/- 0.009) and the large secondary alpha-deuterium KIE (=1.201 +/- 0.021) indicate that (i) the glycosidic bond is essentially completely broken in the transition state and (ii) there is significant sp(2) character at the anomeric carbon. Large secondary beta-deuterium KIEs were observed when [2'R-(2)H] = 1.102 +/- 0.011 and [2'S-(2)H] = 1.106 +/- 0.010. The nearly equal and large magnitudes of the two stereospecific beta-deuterium KIEs indicate strong hyperconjugation between the elongated glycosidic bond and both of the C2'-H2' bonds. Geometric interpretation of these beta-deuterium KIEs indicates that the furanose ring adopts a mild 3'-exo sugar pucker in the transition state, as would be expected for maximal stabilization of an oxocarbenium ion. Taken together, these results strongly indicate that the reaction proceeds through a dissociative transition state, with complete dissociation of the uracil anion followed by addition of water. To our knowledge, this is the first transition-state structure determined for enzymatic cleavage of the glycosidic linkage in a pyrimidine deoxyribonucleotide.

摘要

DNA修复酶尿嘧啶DNA糖基化酶催化尿嘧啶碱基切除修复途径的第一步,即水解切割DNA中脱氧尿苷的N-糖苷键。在此,我们报告了动力学同位素效应(KIE)测量结果,这些结果使我们能够确定这一重要反应的过渡态结构。较小的一级(13)C KIE(=1.010±0.009)和较大的二级α-氘KIE(=1.201±0.021)表明:(i)糖苷键在过渡态基本完全断裂;(ii)异头碳处有显著的sp(2)特征。当[2'R-(2)H]=1.102±0.011和[2'S-(2)H]=1.106±0.010时,观察到较大的二级β-氘KIE。两个立体特异性β-氘KIE几乎相等且较大的幅度表明,伸长的糖苷键与两个C2'-H2'键之间存在强烈的超共轭作用。对这些β-氘KIE的几何解释表明,呋喃糖环在过渡态采用轻度的3'-外向糖环构象,这是氧鎓离子最大程度稳定时所预期的。综上所述,这些结果有力地表明该反应通过解离过渡态进行,尿嘧啶阴离子完全解离后再加水。据我们所知,这是首次确定嘧啶脱氧核苷酸中糖苷键酶促切割的过渡态结构。

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