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Heterogeneous Solvation in Distinctive Protein-Protein Interfaces Revealed by Molecular Dynamics Simulations

机译:分子动力学模拟显示的独特蛋白质 - 蛋白质界面中的异质溶剂

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摘要

Water, despite being a driving force in biochemical processes, has an elusively complex microscopic behavior. While water can increase its local density near amphiphilic protein surfaces, water is also thought to evaporate from hydrophobic surfaces and cavities, an effect known as "dewetting". The existence and extent of dewetting effects remains elusive due to the difficulty in observing clear "drying" transitions in experiments or simulations. Here, we use explicit solvent molecular dynamics (MD) simulations to study the molecular solvation at the binding interfaces of two distinctive molecular complexes: the highly hydrophilic barnase barstar and the highly hydrophobic MDM2-p53. Our simulations, in conjunction with simple volumetric analyses, reveal a strikingly different water behavior at the binding interfaces of these two molecular complexes. In both complexes, we observe significant changes in the water local density as the two proteins approach, supporting the existence of a clear dewetting transition in the case of MDM2-p53, with an onset distance of 5.6-7.6 angstrom. Furthermore, the solvation analysis reported herein is a valuable tool to capture and quantify persistent or transient dewetting events in future explicit solvent MD simulations.
机译:尽管是生化过程中的驱动力,但仍具有鲜烈复杂的微观行为。虽然水可以增加其局部密度附近两亲蛋白质表面,但也认为水从疏水表面和空腔中蒸发,一种称为“脱喷”的效果。由于难以观察实验或模拟中的清晰“干燥”过渡,因此脱模效应的存在和程度仍然难以忽视。在这里,我们使用明确的溶剂分子动力学(MD)模拟来研究两个独特分子复合物的结合界面处的分子溶剂:高亲水性晶酶Barstar和高度疏水的MDM2-P53。我们的仿真与简单的体积分析结合,揭示了这两个分子复合物的结合界面的尖锐不同的水行为。在两种复合物中,我们观察到水局部密度的显着变化作为两种蛋白质方法,支持在MDM2-P53的情况下存在清晰的脱水过渡,起始距离为5.6-7.6埃。此外,本文报道的溶剂化分析是在未来的明确溶剂MD模拟中捕获和量化持续或瞬态脱模事件的有价值的工具。

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