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Multiple binding modes of a small molecule to human Keap1 revealed by X-ray crystallography and molecular dynamics simulation

机译:X射线晶体学和分子动力学模拟揭示小分子与人Keap1的多种结合模式

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摘要

class="kwd-title">Abbreviations: DTT, dithiothreitol; Keap1, Kelch-like ECH-associated protein 1; MD, molecular dynamics; Nrf2, Nuclear factor erythroid 2-related factor 2; PDB, Protein Data Bank class="kwd-title">Keywords: Oxidative stress, Antioxidant response, β-Propeller, Crystal packing, Fragment-based drug discovery, Structure-based drug design class="head no_bottom_margin" id="idm140352208742112title">AbstractKeap1 protein acts as a cellular sensor for oxidative stresses and regulates the transcription level of antioxidant genes through the ubiquitination of a corresponding transcription factor, Nrf2. A small molecule capable of binding to the Nrf2 interaction site of Keap1 could be a useful medicine. Here, we report two crystal structures, referred to as the soaking and the cocrystallization forms, of the Kelch domain of Keap1 with a small molecule, Ligand1. In these two forms, the Ligand1 molecule occupied the binding site of Keap1 so as to mimic the ETGE motif of Nrf2, although the mode of binding differed in the two forms. Because the Ligand1 molecule mediated the crystal packing in both the forms, the influence of crystal packing on the ligand binding was examined using a molecular dynamics (MD) simulation in aqueous conditions. In the MD structures from the soaking form, the ligand remained bound to Keap1 for over 20 ns, whereas the ligand tended to dissociate in the cocrystallization form. The MD structures could be classified into a few clusters that were related to but distinct from the crystal structures, indicating that the binding modes observed in crystals might be atypical of those in solution. However, the dominant ligand recognition residues in the crystal structures were commonly used in the MD structures to anchor the ligand. Therefore, the present structural information together with the MD simulation will be a useful basis for pharmaceutical drug development.
机译:<!-fig ft0-> <!-fig @ position =“ anchor” mode =文章f4-> <!-fig mode =“ anchred” f5-> <!-fig / graphic | fig / alternatives / graphic mode =“ anchored” m1-> class =“ kwd-title”>缩写: DTT,二硫苏糖醇; Keap1,类似于Kelch的ECH相关蛋白1; MD,分子动力学; Nrf2,核因子红系2相关因子2; PDB,蛋白质数据库 class =“ kwd-title”>关键字:氧化应激,抗氧化反应,β-螺旋桨,晶体堆积,基于片段的药物发现,基于结构的药物设计 class =“摘要 Keap1蛋白可作为氧化应激的细胞传感器,并通过相应转录因子Nrf2的泛素化来调节抗氧化剂基因的转录水平。能够结合Keap1的Nrf2相互作用位点的小分子可能是有用的药物。在这里,我们报告了Keap1的Kelch域与一个小分子Ligand1的两个晶体结构,分别称为均热和共结晶形式。在这两种形式中,Ligand1分子占据了Keap1的结合位点,从而模仿了Nrf2的ETGE基序,尽管两种形式的结合方式不同。因为Ligand1分子介导了两种形式的晶体堆积,所以在含水条件下使用分子动力学(MD)模拟检查了晶体堆积对配体结合的影响。在浸泡形式的MD结构中,配体在20 ns内仍与Keap1结合,而配体则倾向于以共结晶形式解离。 MD结构可分为与晶体结构相关但与晶体结构不同的几个簇,这表明晶体中观察到的结合模式可能与溶液中的非典型。然而,晶体结构中的主要配体识别残基通常用于MD结构中以锚定配体。因此,当前的结构信息以及MD模拟将成为药物开发的有用基础。

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