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通过分子动力学研究雌激素受体的配体选择性

Ligand selectivity of estrogen receptors by a molecular dynamics study.

作者信息

Hu Guodong, Wang Jihua

机构信息

Shandong Provincial Key Laboratory of Functional Macromolecular Biophysics, Dezhou University, Dezhou, Shandong 253023, China; Department of Physics, Dezhou University, Dezhou, Shandong 253023, China.

出版信息

Eur J Med Chem. 2014 Mar 3;74:726-35. doi: 10.1016/j.ejmech.2013.04.049. Epub 2013 May 3.

DOI:10.1016/j.ejmech.2013.04.049
PMID:23694906
Abstract

Estrogen receptors α (ERα) and β (ERβ) have different physiological functions and expression levels in different tissues. ERα and ERβ are highly homologous and have only two residue substitutions in the binding pocket. This high similarity at the active site stimulates the interests for discovering subtype selective ligands. In this study, molecular dynamics (MD) simulations combined with molecular mechanics generalized Born surface area (MM-GBSA) method have been carried out to analyze the basis of selectivity of three ligands (659, 818 and 041). The calculated binding free energies show that all the ligands bind more tightly to ERβ than to ERα. The dominant free energy components of selectivity for 659 are similar to that for 041, but different from that for 818. The decompositions of free energy contributions and structural analysis imply that there are eight residues primarily contributing to the selectivity for 659, five residues for 041, as well as two residues for 818. The structural analysis implies that two residue substitutions in binding packet cause the position of 659 in ERβ-659 complex to shift relative to that in ERα-659 complex and also cause the conformational changes of other residues in the binding pocket. The higher selectivity for 041 is mainly caused by three residues, Ile373 (Met421), His475 (His524) and Leu476 (Leu525).

摘要

雌激素受体α(ERα)和β(ERβ)在不同组织中具有不同的生理功能和表达水平。ERα和ERβ高度同源,在结合口袋中仅有两个残基替换。活性位点的这种高度相似性激发了人们发现亚型选择性配体的兴趣。在本研究中,已进行分子动力学(MD)模拟并结合分子力学广义玻恩表面积(MM-GBSA)方法来分析三种配体(659、818和041)选择性的基础。计算得到的结合自由能表明,所有配体与ERβ的结合都比与ERα的结合更紧密。659选择性的主要自由能成分与041的相似,但与818的不同。自由能贡献的分解和结构分析表明,有八个残基主要对659的选择性有贡献,五个残基对041的选择性有贡献,还有两个残基对818的选择性有贡献。结构分析表明,结合口袋中的两个残基替换导致659在ERβ-659复合物中的位置相对于其在ERα-659复合物中的位置发生移动,并且还导致结合口袋中其他残基的构象变化。041较高的选择性主要由三个残基引起,即Ile373(Met421)、His475(His524)和Leu476(Leu525)。

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