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抑制剂 P218 对野生型和突变型 PfDHFR 特异性的起源:分子动力学分析。

Origins of the specificity of inhibitor P218 toward wild-type and mutant PfDHFR: a molecular dynamics analysis.

机构信息

a Department of Pharmacoinformatics , National Institute of Pharmaceutical Education and Research , Sector 67, S.A.S. Nagar, Punjab 160 062 , India.

出版信息

J Biomol Struct Dyn. 2015 Sep;33(9):1913-28. doi: 10.1080/07391102.2014.979231. Epub 2014 Nov 17.

DOI:10.1080/07391102.2014.979231
PMID:25333695
Abstract

Molecular dynamics simulations were performed to evaluate the origin of the antimalarial effect of the lead compound P218. The simulations of the ligand in the cavities of wild-type, mutant Plasmodium falciparum Dihydrofolate Reductase (PfDHFR) and the human DHFR revealed the differences in the atomic-level interactions and also provided explanation for the specificity of this ligand toward PfDHFR. The binding free energy estimation using Molecular Mechanics Poisson-Boltzmann Surface Area method revealed that P218 has higher binding affinity (~ -30 to -35 kcal/mol) toward PfDHFR (both in wild-type and mutant forms) than human DHFR (~ -22 kcal/mol), corroborating the experimental observations. Intermolecular hydrogen bonding analysis of the trajectories showed that P218 formed two stable hydrogen bonds with human DHFR (Ile7 and Glu30), wild-type and double-mutant PfDHFR's (Asp54 and Arg122), while it formed three stable hydrogen bonds with quadruple-mutant PfDHFR (Asp54, Arg59, and Arg122). Additionally, P218 binding in PfDHFR is stabilized by hydrogen bonds with residues Ile14 and Ile164. It was found that mutant residues do not reduce the binding affinity of P218 to PfDHFR, in contrast, Cys59Arg mutation strongly favors inhibitor binding to quadruple-mutant PfDHFR. The atomistic-level details explored in this work will be highly useful for the design of non-resistant novel PfDHFR inhibitors as antimalarial agents.

摘要

采用分子动力学模拟方法研究了先导化合物 P218 的抗疟作用起源。模拟结果表明,配体在野生型和突变型恶性疟原虫二氢叶酸还原酶(PfDHFR)以及人二氢叶酸还原酶(hDHFR)空腔中的原子水平相互作用存在差异,这也为该配体对 PfDHFR 的特异性提供了解释。使用分子力学泊松-玻尔兹曼表面面积(MM-PBSA)方法进行的结合自由能估算表明,P218 与 PfDHFR(野生型和突变型)的结合亲和力(-30 到-35 kcal/mol)高于 hDHFR(-22 kcal/mol),与实验观察结果一致。轨迹的分子间氢键分析表明,P218 与人 DHFR(Ile7 和 Glu30)、野生型和双突变 PfDHFR(Asp54 和 Arg122)形成了两个稳定的氢键,而与四重突变 PfDHFR(Asp54、Arg59 和 Arg122)形成了三个稳定的氢键。此外,P218 在 PfDHFR 中的结合还通过与残基 Ile14 和 Ile164 的氢键得到稳定。研究发现,突变残基并未降低 P218 与 PfDHFR 的结合亲和力,相反,Cys59Arg 突变强烈有利于抑制剂与四重突变 PfDHFR 的结合。本工作中探索的原子水平细节对于设计新型非耐药 PfDHFR 抑制剂作为抗疟药物将非常有用。

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