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Optimal strategies for virtual screening of induced-fit and flexible target in the 2015 D3R Grand Challenge

机译:在2015 D3R挑战赛中虚拟筛选诱导拟合和灵活目标的最佳策略

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摘要

Induced fit or protein flexibility can make a given structure less useful for docking and/or scoring. The 2015 Drug Design Data Resource (D3R) Grand Challenge provided a unique opportunity to prospectively test optimal strategies for virtual screening in these type of targets: heat shock protein 90 (HSP90), a protein with multiple ligand-induced binding modes; and, mitogen-activated protein kinase kinase kinase kinase 4 (MAP4K4), a kinase with a large flexible pocket. Using previously known co-crystal structures, we tested predictions from methods that keep the receptor structure fixed and used (a) multiple receptor/ligand co-crystals as binding templates for minimization or docking (“close”), (b) methods that align or dock to a single receptor (“cross”), and (c) a hybrid approach that chose from multiple bound ligands as initial templates for minimization to a single receptor (“min-cross”). Pose prediction using our “close” models resulted in average ligand RMSDs of 0.32 Å and 1.6 Å for HSP90 and MAP4K4, respectively, the most accurate models of the community-wide challenge. On the other hand, affinity ranking using our “cross” methods performed well overall despite the fact that a fixed receptor cannot model ligand-induced structural changes,. In addition, “close” methods that leverage the co-crystals of the different binding modes of HSP90 also predicted the best affinity ranking. Our studies suggest that analysis of changes on the receptor structure upon ligand binding can help select an optimal virtual screening strategy.
机译:诱导的贴合性或蛋白质的柔韧性会使给定的结构在对接和/或刻痕中的作用降低。 2015年药物设计数据资源(D3R)大挑战赛提供了一个独特的机会,可以前瞻性地测试针对这些类型目标的虚拟筛选最佳策略:热激蛋白90(HSP90),一种具有多种配体诱导的结合模式的蛋白;丝裂原活化的蛋白激酶激酶激酶激酶4(MAP4K4),一种具有较大柔性袋的激酶。使用先前已知的共晶体结构,我们测试了保持受体结构固定并使用(a)多个受体/配体共晶体作为最小化或对接(“闭合”)结合模板的方法的预测,(b)对齐的方法或对接至单个受体(“交叉”),以及(c)从多个结合的配体中选择的杂交方法作为最小化单个受体的初始模板(“最小交叉”)。使用我们的“近距离”模型进行的姿势预测得出,HSP90和MAP4K4的平均配体RMSD分别为0.32Å和1.6Å,这是应对整个社区挑战的最准确模型。另一方面,尽管固定受体无法模拟配体诱导的结构变化,但使用我们的“交叉”方法进行的亲和力排序总体上表现良好。此外,利用HSP90不同结合模式的共晶体的“封闭”方法也可预测最佳亲和力等级。我们的研究表明,配体结合后受体结构变化的分析可以帮助选择最佳的虚拟筛选策略。

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