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Intriguing role of water in protein-ligand binding studied by neutron crystallography on trypsin complexes

机译:中子晶体学研究胰蛋白酶复合物中水在蛋白质-配体结合中的有趣作用

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摘要

Hydrogen bonds are key interactions determining protein-ligand binding affinity and therefore fundamental to any biological process. Unfortunately, explicit structural information about hydrogen positions and thus H-bonds in protein-ligand complexes is extremely rare and similarly the important role of water during binding remains poorly understood. Here, we report on neutron structures of trypsin determined at very high resolutions ≤1.5 Å in uncomplexed and inhibited state complemented by X-ray and thermodynamic data and computer simulations. Our structures show the precise geometry of H-bonds between protein and the inhibitors N-amidinopiperidine and benzamidine along with the dynamics of the residual solvation pattern. Prior to binding, the ligand-free binding pocket is occupied by water molecules characterized by a paucity of H-bonds and high mobility resulting in an imperfect hydration of the critical residue Asp189. This phenomenon likely constitutes a key factor fueling ligand binding via water displacement and helps improving our current view on water influencing protein–ligand recognition.
机译:氢键是决定蛋白质-配体结合亲和力的关键相互作用,因此对任何生物学过程都是至关重要的。不幸的是,关于氢位置以及因此在蛋白质-配体复合物中的氢键的明确结构信息极为罕见,并且类似地,在结合过程中水的重要作用仍然知之甚少。在这里,我们报道了在X射线和热力学数据以及计算机模拟的辅助下,在未复杂和受抑制的状态下以≤1.5Å的高分辨率确定的胰蛋白酶的中子结构。我们的结构显示了蛋白质与抑制剂N-ami基哌啶和苯甲idine之间氢键的精确几何形状以及残留溶剂化模式的动力学。在结合之前,无配体的结合袋被水分子占据,其特征在于H键的缺乏和高迁移率,导致关键残基Asp189的不完全水合。这种现象可能是通过水置换促进配体结合的关键因素,并有助于改善我们目前对水影响蛋白质-配体识别的看法。

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