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硅基环境下核苷水解酶催化作用的探索:酶结合底物与过渡态的分子动力学研究

Exploring nucleoside hydrolase catalysis in silico: molecular dynamics study of enzyme-bound substrate and transition state.

作者信息

Mazumder Devleena, Bruice Thomas C

机构信息

Department of Chemistry and Biochemistry, University of California, Santa Barbara, Santa Barbara, California 93106, USA.

出版信息

J Am Chem Soc. 2002 Dec 11;124(49):14591-600. doi: 10.1021/ja021088e.

Abstract

The mechanism of action of inosine-uridine nucleoside hydrolase has been investigated by long-term molecular dynamics (MD) simulation in TIP3P water using stochastic boundary conditions. Five MD studies have been performed with enzyme substrate complex (E.S), enzyme substrate complex with protonated His241 (EH.S), enzyme transition state complex (E.TS), enzyme transition state complex with protonated His241 (EH.TS), and His241Ala transition state complex E(H241A).TS. Special attention has been given to the role of His241, which has been considered as the general acid catalyst to assist departure of the leaving nucleobase on the basis of its location in the active site in the X-ray crystal structure (). Yet on the basis of the location in the active site, Tyr229 is closer to the aniline ring of pAPIR as compared to His241. On initiation of MD simulations, His241 does not approach the nucleobase in the structures of EH.S, E.S, EH.TS, and E.TS. In the solvated enzyme, Tyr229, which is a member of the hydrogen bonding network inosine O2'.Asp14.His241.Tyr229.inosine N7, serves as a proton source to the leaving nucleobase. The loss of significant activity of His241Ala mutant is shown to be related to the disruption of the above hydrogen bonded network and the distancing of Tyr229 from inosine N7. The structures of the enzyme complexes with substrate or TS are not visibly altered on protonation of His241, a most unusual outcome. The bell-shaped pH dependence upon pK(app)'s of 7.1 and 9.1 may be attributed to the necessity of the dissociation of Asp10 or Asp15 and the acid form of Tyr229, respectively. In TS, the residue Ile81 migrated closer, whereas Arg233 moved away from the nucleobase. The probability of ribooxocarbenium ion stabilization by Asn168 and Asp14 is discussed. The Asp14-CO(2)(-) is hydrogen bonded to the ribose 2'-OH for 96% of the MD simulation time. Nucleophilic addition of water138 to ribooxocarbenium ion is suggested to be assisted by the proton shuttle from water138 --> Asp10 --> Asp15 --> water pool. An anticorrelation motion between Tyr229-OH and Asn168-OD1 in EH.S and E.S is observed. The relationship of this anticorrelated motion to mechanism, if any, deserves further exploration, perhaps the formation of a near attack conformation.

摘要

通过在TIP3P水中使用随机边界条件进行长期分子动力学(MD)模拟,对肌苷 - 尿苷核苷水解酶的作用机制进行了研究。已经对酶 - 底物复合物(E.S)、带有质子化His241的酶 - 底物复合物(EH.S)、酶过渡态复合物(E.TS)、带有质子化His241的酶过渡态复合物(EH.TS)以及His241Ala过渡态复合物E(H241A).TS进行了五项MD研究。特别关注了His241的作用,基于其在X射线晶体结构活性位点中的位置,它被认为是协助离去核碱基离去的一般酸催化剂。然而,基于在活性位点中的位置,与His241相比,Tyr229更靠近对氨基苯异吲哚啉(pAPIR)的苯胺环。在MD模拟开始时,His241在EH.S、E.S、EH.TS和E.TS结构中均未靠近核碱基。在溶剂化的酶中,Tyr229是氢键网络肌苷O2'.Asp14.His241.Tyr229.肌苷N7的成员,作为离去核碱基的质子源。His241Ala突变体显著活性的丧失被证明与上述氢键网络的破坏以及Tyr229与肌苷N7的距离增加有关。His241质子化后,酶与底物或过渡态的复合物结构没有明显改变,这是一个非常不寻常的结果。钟形的pH依赖性(pK(app)'s为7.1和9.1)可能分别归因于Asp10或Asp15解离以及Tyr229酸性形式的必要性。在过渡态中,Ile81残基迁移得更近,而Arg233远离核碱基。讨论了Asn168和Asp14稳定核糖氧碳鎓离子的可能性。在MD模拟时间的96%中,Asp14-CO₂⁻与核糖2'-OH形成氢键。建议水138对核糖氧碳鎓离子的亲核加成由质子穿梭水138 --> Asp10 --> Asp15 -->水池协助。在EH.S和E.S中观察到Tyr229-OH和Asn168-OD1之间的反相关运动。这种反相关运动与机制的关系(如果有的话)值得进一步探索,也许是形成近攻击构象。

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