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组氨酸265对于痘苗拓扑异构酶的共价催化作用很重要,并且在所有真核生物I型酶中都保守存在。

Histidine 265 is important for covalent catalysis by vaccinia topoisomerase and is conserved in all eukaryotic type I enzymes.

作者信息

Petersen B O, Shuman S

机构信息

Molecular Biology Program, Sloan-Kettering Institute, New York, New York 10021, USA.

出版信息

J Biol Chem. 1997 Feb 14;272(7):3891-6. doi: 10.1074/jbc.272.7.3891.

DOI:10.1074/jbc.272.7.3891
PMID:9020090
Abstract

Vaccinia topoisomerase catalyzes DNA cleavage and rejoining via transesterification to pentapyrimidine recognition site 5'-(C/T)CCTT downward arrow in duplex DNA. The proposed reaction mechanism involves general-base catalysis of the attack by active site nucleophile Tyr-274 on the scissile phosphodiester and general-acid catalysis of the expulsion of the 5'-deoxyribose oxygen on the leaving DNA strand. The pKa values suggest histidine and cysteine side chains as candidates for the roles of proton acceptor and donor, respectively. To test this, we replaced each of the eight histidines and two cysteines of the vaccinia topoisomerase with alanine. Single mutants C100A and C211A and a double mutant C100A-C211A were fully active in DNA relaxation, indicating that a cysteine is not the general acid. Only one histidine mutation, H265A, affected enzyme activity. The rates of DNA relaxation, single-turnover strand cleavage, and single-turnover religation by H265A were 2 orders of magnitude lower than the wild-type rates. Yet the H265A mutation did not alter the dependence of the cleavage rate on pH, indicating that His-265 is not the general base. Replacing His-265 with glutamine or asparagine slowed DNA relaxation and single-turnover cleavage to about one-third of the wild-type rate. All three mutations, H265A, H265N, and H265Q, skewed the cleavage-religation equilibrium in favor of the covalently bound state. His-265 is strictly conserved in every member of the eukaryotic type I topoisomerase family.

摘要

痘苗病毒拓扑异构酶通过转酯反应催化DNA切割和重新连接,作用于双链DNA中的五嘧啶识别位点5'-(C/T)CCTT向下箭头。提出的反应机制涉及活性位点亲核试剂Tyr-274对可切割磷酸二酯的攻击的一般碱催化,以及离开DNA链上5'-脱氧核糖氧的排出的一般酸催化。pKa值表明组氨酸和半胱氨酸侧链分别作为质子受体和供体作用的候选者。为了验证这一点,我们将痘苗病毒拓扑异构酶的八个组氨酸和两个半胱氨酸分别替换为丙氨酸。单突变体C100A和C211A以及双突变体C100A-C211A在DNA松弛方面完全有活性,表明半胱氨酸不是一般酸。只有一个组氨酸突变H265A影响酶活性。H265A的DNA松弛、单轮链切割和单轮重新连接速率比野生型速率低2个数量级。然而,H265A突变并没有改变切割速率对pH的依赖性,表明His-265不是一般碱。用谷氨酰胺或天冬酰胺取代His-265会使DNA松弛和单轮切割减慢至野生型速率的约三分之一。所有三个突变H265A、H265N和H265Q都使切割-重新连接平衡偏向共价结合状态。His-265在真核I型拓扑异构酶家族的每个成员中都严格保守。

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