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通过分子动力学模拟和分子间核 Overhauser 效应研究 298 K 下三氟乙醇-水体系中三氟乙醇与 Trp-Cage 的相互作用。

Examination of Trifluoroethanol Interactions with Trp-Cage in Trifluoroethanol-Water at 298 K through Molecular Dynamics Simulations and Intermolecular Nuclear Overhauser Effects.

机构信息

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

出版信息

J Phys Chem B. 2019 Apr 18;123(15):3248-3258. doi: 10.1021/acs.jpcb.9b01171. Epub 2019 Apr 9.

Abstract

Molecular dynamics simulations of the protein model Trp-cage in 42% trifluoroethanol (TFE)-water at 298 K have been carried out with the goal of exploring peptide hydrogen-solvent fluorine nuclear spin cross-relaxation. The TFE5 model of TFE developed in a previous work was used with the TIP5P-Ew model of water. System densities and component translational diffusion coefficients predicted by the simulations were within 20% of the experimental values. Consideration of the calculated relative amounts of TFE and water surrounding the hydrogens of Trp-cage indicated that the composition of the solvent mixture beyond ∼1.5 nm from the van der Waals surface of the peptide is close to the composition of the bulk solvent, but as observed by others, TFE accumulates preferentially near the peptide surface. In the simulations, both TFE and water molecules make contacts with the peptide surface; water molecules predominate in contacts with the peptide backbone atoms and TFE molecules generally preferentially interact with side chains. Translational diffusion of solvent molecules appears to be slowed near the surface of the peptide. Depending on the location in the structure, TFE molecules form complexes with the peptide that may persist for up to ∼7 ns. Many of the peptide spin-solvent fluorine cross-relaxation parameters (Σ) for which experimental values are available are reasonably well-predicted from the simulations. However, the calculated Σ values were too small for some hydrogens of the 6Trp indole ring and the amino acid hydrogens near this residue in the native structure, whereas Σ values for hydrogens on the side chains of 1Asn, 4Ile, and 7Leu are too large. In 42% TFE-water, persistent conformations of Trp-cage are found, which differ from the conformation found in water by the orientation of the 3Tyr ring.

摘要

在 298 K 下,对 42%三氟乙醇(TFE)-水体系中的 Trp-cage 蛋白模型进行了分子动力学模拟,目的是探索肽氢-溶剂氟核自旋交叉弛豫。在之前的工作中,采用了 TFE5 模型和 TIP5P-Ew 模型的水。模拟预测的系统密度和组分平移扩散系数与实验值相差在 20%以内。考虑到计算得出的 Trp-cage 氢周围 TFE 和水的相对含量表明,在距肽范德华表面约 1.5nm 以外的溶剂混合物的组成与本体溶剂的组成接近,但正如其他人观察到的,TFE 优先积累在肽表面附近。在模拟中,TFE 和水分子都与肽表面接触;水分子与肽骨架原子的接触占主导地位,而 TFE 分子通常优先与侧链相互作用。溶剂分子的平移扩散在肽表面附近似乎会减慢。根据结构中的位置,TFE 分子与肽形成复合物,这些复合物可能持续长达约 7ns。对于实验值可用的许多肽-溶剂氟交叉弛豫参数(Σ),模拟可以合理地预测。然而,对于一些 Trp 吲哚环的氢原子和天然结构中该残基附近的氨基酸氢原子,计算出的 Σ 值太小,而对于 1Asn、4Ile 和 7Leu 侧链上的氢原子,Σ 值太大。在 42%的 TFE-水中,发现了 Trp-cage 的持久构象,这些构象与水中的构象在 3Tyr 环的取向上有所不同。

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