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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Effects of Urea, Tetramethyl Urea, and Trimethylamine N-Oxide on Aqueous Solution Structure and Solvation of Protein Backbones: A Molecular Dynamics Simulation Study
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Effects of Urea, Tetramethyl Urea, and Trimethylamine N-Oxide on Aqueous Solution Structure and Solvation of Protein Backbones: A Molecular Dynamics Simulation Study

机译:尿素,四甲基尿素和三甲胺N-氧化物对水溶液结构和蛋白质骨架溶解的影响:分子动力学模拟研究

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摘要

The effects of urea, tetramethyl urea (TMU), and trimethylamine N-oxide (TMAO) on the structure and dynamics of aqueous solutions are studied using molecular dynamics simulations. It was found that urea has little effects on the water-water hydrogen-bond length and angle distributions except that it induces a slight collapse of the second shell in the hydrogen-bonding network. TMU and TMAO both strengthen the individual hydrogen bonds and significantly slow the orientational relaxation of water, but have opposite effects on the second shell structure of the hydrogen-bonding network; TMU distorts while TMAO enhances the tetrahedral water structure. Furthermore, TMAO significantly weakens the interactions between the amide carbonyl group and the water molecules, while TMU and urea both strengthen these interactions, with the effect of urea being much less significant than that of TMU. These conclusions are supported by molecular dynamics simulations of three different systems: a model amide compound CH3-NH-CO-CH3 (NMA), and two polypeptides, GB1 and ELP. Consistent with earlier studies, we also found that urea interacts strongly with the carbonyl group through direct hydrogen bonding. The simulations for the denaturation of the polypeptide GB 1 in urea solutions showed that the breaking of its native hydrogen bonds follows a step-by-step process and each step is strongly coupled to the formation of water-carbonyl hydrogen bonds, and to a less extent to the urea-carbonyl hydrogen-bond formation. Our simulation results reveal the potential importance of the indirect effects of cosolvents in protein denaturation or structure protection, particularly through modifying of the water-amide interactions.
机译:使用分子动力学模拟研究了尿素,四甲基尿素(TMU)和三甲胺N-氧化物(TMAO)对水溶液的结构和动力学的影响。发现脲对水-水氢键的长度和角度分布几乎没有影响,除了它引起氢键网络中第二壳的轻微塌陷。 TMU和TMAO都增强了氢键,显着减缓了水的取向松弛,但对氢键网络的第二壳结构产生了相反的影响。 TMU扭曲,而TMAO增强四面体水结构。此外,TMAO显着削弱了酰胺羰基与水分子之间的相互作用,而TMU和尿素都增强了这些相互作用,尿素的作用远不如TMU显着。这些结论得到三个不同系统的分子动力学模拟的支持:模型酰胺化合物CH3-NH-CO-CH3(NMA),以及两个多肽GB1和ELP。与早期研究一致,我们还发现尿素通过直接氢键与羰基强烈相互作用。尿素溶液中多肽GB 1变性的模拟表明,其天然氢键的断裂遵​​循逐步过程,并且每个步骤都与水-羰基氢键的形成紧密相关,并且与程度到脲-羰基氢键的形成。我们的模拟结果揭示了助溶剂对蛋白质变性或结构保护的间接作用的潜在重要性,特别是通过修饰水-酰胺相互作用。

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