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Exploring Protein Flexibility: Incorporating Structural Ensembles From Crystal Structures and Simulation into Virtual Screening Protocols

机译:探索蛋白质灵活性:将结构集合从晶体结构和仿真融入虚拟筛选协议中

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摘要

The capacity of proteins to adapt their structure in response to various perturbations including covalent modifications, and interactions with ligands and other proteins plays a key role in biological processes. Here, we explore the ability of molecular dynamics (MD), replica exchange molecular dynamics (REMD) and a library of structures of crystal-ligand complexes, to sample the protein conformational landscape and especially the accessible ligand binding site geometry. The extent of conformational space sampled is measured by the diversity of the shapes of the ligand binding sites. Since our focus here is the effect of this plasticity on the ability to identify active compounds through virtual screening, we use the structures generated by these techniques to generate a small ensemble for further docking studies, using binding site shape hierarchical clustering to determine four structures for each ensemble These are then assessed for their capacity to optimize enrichment and diversity in docking. We test these protocols on three different receptors: androgen receptor (AR), HIV protease, and CDK2. We show that REMD enhances structural sampling slightly as compared both to MD, and the distortions induced by ligand binding as reflected in the crystal structures. The improved sampling of the simulation methods doesn’t translate directly into improved docking performance however. The ensemble approach did improve enrichment and diversity, and, the ensemble derived from the crystal structures performed somewhat better than those derived from the simulations.
机译:蛋白质以响应于包括共价修饰的各种扰动和与配体和其他蛋白质的相互作用在包括共价修饰的各种扰动的能力在生物过程中发挥着关键作用。在这里,我们探讨分子动力学(MD),复制交换分子动力学(REMD)和晶体配体复合物的结构文库的能力,以对蛋白质构象景观和尤其是可偏转的配体结合位点几何形状进行样品。通过配体结合位点的形状的多样性测量采样的构象空间的程度。由于我们这里的重点是这种可塑性通过虚拟筛选来识别活性化合物的能力,我们使用这些技术产生的结构来产生用于进一步对接研究的小型集合,使用绑定站点形状分层聚类来确定四个结构然后,每组合奏都会评估它们在对接中优化丰富和多样性的能力。我们在三种不同的受体上测试这些方案:雄激素受体(AR),HIV蛋白酶和CDK2。我们表明,与MD相比,REMD略微增强了结构采样,以及由晶体结构中反射的配体结合引起的扭曲。然而,仿真方法的改进采样不会直接转化为改善的对接性能。该集合方法确实改善了丰富和多样性,并且,从晶体结构衍生的集合比衍生自模拟的晶体结构略微更好。

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