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Docking-based identification of small-molecule binding sites at protein-protein interfaces

机译:基于对接的蛋白质 - 蛋白质界面的小分子结合位点的鉴定

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摘要

Protein-protein interactions play an essential role in many biological processes, and their perturbation is a major cause of disease. The use of small molecules to modulate them is attracting increased attention, but protein interfaces generally do not have clear cavities for binding small compounds. A proposed strategy is to target interface hot-spot residues, but their identification through computational approaches usually require the complex structure, which is not often available. In this context, pyDock energy-based docking and scoring can predict hot-spots on the unbound proteins, thus not requiring the complex structure. Here, we have devised a new strategy to detect protein–protein inhibitor binding sites, based on the integration of molecular dynamics for the generation of transient cavities, and docking-based interface hot-spot prediction for the selection of the suitable cavities. This integrative approach has been validated on a test set formed by protein–protein complexes with known inhibitors for which complete structural data of unbound molecules and complexes is available. The results show that local conformational sampling with short molecular dynamics can generate transient cavities similar to the known inhibitor binding sites, and that docking simulations can identify the best cavities with similar predictive accuracy as when knowing the real interface. In a few cases, these predicted pockets are shown to be suitable for protein–ligand docking. The proposed strategy will be useful for many protein–protein complexes for which there is no available structure, as long as the the unbound proteins do not deviate dramatically from the bound conformations.
机译:蛋白质 - 蛋白质相互作用在许多生物过程中起重要作用,并且它们的扰动是疾病的主要原因。使用小分子来调节它们是吸引的增加,但蛋白质接口通常没有用于结合小化合物的透明空腔。拟议的策略是瞄准界面热点残留物,但通过计算方法的识别通常需要复杂的结构,这通常不可用。在这种情况下,基于PyDock能量的对接和评分可以预测未结合蛋白质的热点,因此不需要复杂的结构。这里,我们设计了一种新的策略来检测蛋白质蛋白抑制剂结合位点,基于分子动力学的产生瞬态腔,以及对选择合适腔的对接的界面热点预测。在蛋白质 - 蛋白质复合物形成的试验组上验证了这种整合方法,该蛋白质复合物具有已知的未结合分子和复合物的完整结构数据。结果表明,具有短分子动力学的局部构象取样可以产生类似于已知抑制剂结合位点的瞬态腔,并且对接模拟可以在知道真实界面时具有类似的预测精度的最佳腔。在少数情况下,这些预测的袋被显示适合于蛋白质配体对接。所提出的策略对于许多没有可用结构的蛋白质复合物是有用的,只要未结合的蛋白质没有从结合构象偏差地偏离。

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