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三甲基胺 N-氧化物通过抑制蛋白-脲优先相互作用来抵抗尿素变性。

Trimethylamine N-oxide Counteracts Urea Denaturation by Inhibiting Protein-Urea Preferential Interaction.

机构信息

Department of Chemistry and Biochemistry, University of California at Santa Barbara , Santa Barbara, California 93106, United States.

Department of Physics, University of California at Santa Barbara , Santa Barbara, California 93106, United States.

出版信息

J Am Chem Soc. 2018 Jan 10;140(1):483-492. doi: 10.1021/jacs.7b11695. Epub 2017 Dec 22.

Abstract

Osmolytes are small organic molecules that can modulate the stability and function of cellular proteins by altering the chemical environment of the cell. Some of these osmolytes work in conjunction, via mechanisms that are poorly understood. An example is the naturally occurring protein-protective osmolyte trimethylamine N-oxide (TMAO) that stabilizes cellular proteins in marine organisms against the detrimental denaturing effects of another naturally occurring osmolyte, urea. From a computational standpoint, our understanding of this counteraction mechanism is hampered by the fact that existing force fields fail to capture the correct balance of TMAO and urea interactions in ternary solutions. Using molecular dynamics simulations and Kirkwood-Buff theory of solutions, we have developed an optimized force field that reproduces experimental Kirkwood-Buff integrals. We show through the study of two model systems, a 15-residue polyalanine chain and the R2-fragment (GKVQIINKKLDL) of the Tau protein, that TMAO can counteract the denaturing effects of urea by inhibiting protein-urea preferential interaction. The extent to which counteraction can occur is seen to depend heavily on the amino acid composition of the peptide.

摘要

渗透物是小分子有机物质,通过改变细胞的化学环境来调节细胞蛋白的稳定性和功能。其中一些渗透物通过机制协同作用,而这些机制尚未得到很好的理解。一个例子是天然存在的蛋白保护渗透物三甲胺 N-氧化物(TMAO),它可以稳定海洋生物中的细胞蛋白,防止另一种天然存在的渗透物尿素的有害变性作用。从计算的角度来看,我们对这种拮抗机制的理解受到了阻碍,因为现有的力场无法在三元溶液中捕捉到 TMAO 和尿素相互作用的正确平衡。我们使用分子动力学模拟和溶液的 Kirkwood-Buff 理论,开发了一种优化的力场,该力场再现了实验性 Kirkwood-Buff 积分。我们通过对两个模型系统(15 残基聚丙氨酸链和 Tau 蛋白的 R2 片段(GKVQIINKKLDL))的研究表明,TMAO 可以通过抑制蛋白-尿素优先相互作用来拮抗尿素的变性作用。可以看出,拮抗作用的程度在很大程度上取决于肽的氨基酸组成。

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