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血红蛋白内部水分子和疏水腔对配体摄取的调节。

Ligand uptake modulation by internal water molecules and hydrophobic cavities in hemoglobins.

机构信息

Departamento de Química Inorgánica, Analítica y Química Física, INQUIMAE-CONICET, Facultad de Ciencias Exactas y Naturales, Universidad de Buenos Aires , Buenos Aires, Argentina.

出版信息

J Phys Chem B. 2014 Feb 6;118(5):1234-45. doi: 10.1021/jp410724z. Epub 2014 Jan 23.

Abstract

Internal water molecules play an active role in ligand uptake regulation, since displacement of retained water molecules from protein surfaces or cavities by incoming ligands can promote favorable or disfavorable effects over the global binding process. Detection of these water molecules by X-ray crystallography is difficult given their positional disorder and low occupancy. In this work, we employ a combination of molecular dynamics simulations and ligand rebinding over a broad time range to shed light into the role of water molecules in ligand migration and binding. Computational studies on the unliganded structure of the thermostable truncated hemoglobin from Thermobifida fusca (Tf-trHbO) show that a water molecule is in the vicinity of the iron heme, stabilized by WG8 with the assistance of YCD1, exerting a steric hindrance for binding of an exogenous ligand. Mutation of WG8 to F results in a significantly lower stabilization of this water molecule and in subtle dynamical structural changes that favor ligand binding, as observed experimentally. Water is absent from the fully hydrophobic distal cavity of the triple mutant YB10F-YCD1F-WG8F (3F), due to the lack of residues capable of stabilizing it nearby the heme. In agreement with these effects on the barriers for ligand rebinding, over 97% of the photodissociated ligands are rebound within a few nanoseconds in the 3F mutant case. Our results demonstrate the specific involvement of water molecules in shaping the energetic barriers for ligand migration and binding.

摘要

内部水分子在配体摄取调节中起着积极的作用,因为进入的配体可以将保留在蛋白质表面或腔室内的水分子置换出来,从而对整体结合过程产生有利或不利的影响。由于这些水分子的位置无序和低占有率,X 射线晶体学很难检测到它们。在这项工作中,我们采用分子动力学模拟和在广泛的时间范围内重新结合配体的组合,以揭示水分子在配体迁移和结合中的作用。对 Thermobifida fusca (Tf-trHbO)的热稳定截断血红蛋白的非配体结构的计算研究表明,一个水分子靠近铁血红素,由 WG8 稳定,并在 YCD1 的协助下,对结合外源配体施加空间位阻。将 WG8 突变为 F 会导致这个水分子的稳定性显著降低,并且细微的动态结构变化有利于配体结合,这与实验观察到的结果一致。由于附近缺乏能够稳定它的残基,三重突变体 YB10F-YCD1F-WG8F(3F)的完全疏水性远端腔中没有水。与配体重新结合的势垒的这些影响一致,在 3F 突变体情况下,超过 97%的光解离配体在几纳秒内重新结合。我们的结果表明水分子在配体迁移和结合的能量势垒的形成中具有特定的作用。

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