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Combined quantum mechanics/molecular mechanics (QM/MM) methods to understand the charge density distribution of estrogens in the active site of estrogen receptors

机译:组合量子力学/分子力学(QM / mm)方法,了解雌激素受体活性位点中雌激素的电荷密度分布

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The ligand binding to protein and host–guest interactions are ubiquitous for molecular recognition. In drug design, the ligand binding to the active site of proteins is influenced by the charge density distribution and the electrostatic interactions of ligands and the nearby amino acids of the protein. The charge density analyses of ligand–protein complexes need accurate positions of hydrogen atoms and their valence electron distribution and the fine structure of proteins. Such information cannot be obtained from the conventional protein X-ray crystallography analysis in the resolution range of 1.5 to 3.5 ?. This can be realized from QM/MM based structure and charge density analysis of estrogens with the estrogen receptor. The charge density properties such as electron density, Laplacian of electron density and electrostatic properties of estrogens in the presence of active site amino acid residues have been determined and compared with the isolated estrogen molecules from theory and experimental. The present study reveals the chemical bonding nature of estrogen molecules and the strength of the intermolecular interactions in the active site of estrogen receptor, and also the importance of π?π interactions between the estrogens and Phe404 amino acid residue and protonation state of His524 amino acid residue have been identified using electrostatic potential maps. The difference in the electrostatic potential map of estrogens displays the hormone dependent actions of estrogen receptor. This method is very helpful to derive the charge density distribution of macromolecules to understand their biological recognition and interactions.
机译:与蛋白质和宿主的相互作用结合的配体是普遍的分子识别。在药物设计中,与蛋白质的活性位点结合的配体受到充电密度分布和配体的静电相互作用和蛋白质的附近氨基酸的影响。配体 - 蛋白复合物的电荷密度分析需要氢原子的精确位置及其价电子分布和蛋白质的细结构。这些信息不能从常规蛋白质X射线晶体学分析中获得1.5至3.5的分辨率范围内获得。这可以从基于QM / MM的结构和雌激素受体的雌激素的结构和电荷密度分析来实现。已经确定并在活性位点氨基酸残基存在下的电荷密度,电子密度,电子密度的静电性能和雌激素的静电性能等电荷密度特性并与来自理论和实验的分离的雌激素分子进行比较。本研究揭示了雌激素分子的化学键键性质和雌激素受体的活性位点中的分子间相互作用的强度,以及雌激素和PHE404氨基酸残基与HIS524氨基酸的质子化状态之间的ππ相互作用的重要性已经使用静电潜在地图识别残留物。雌激素静电潜在图的差异显示雌激素受体的激素依赖性作用。这种方法非常有助于导出大分子的电荷密度分布,以了解其生物学识别和相互作用。

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