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蛋白质骨架水合作用对拉曼和拉曼光学活性光谱中酰胺振动的影响。

The effect of protein backbone hydration on the amide vibrations in Raman and Raman optical activity spectra.

机构信息

Department of Chemistry, University of Antwerp, Groenenborgerlaan 171, B-2020 Antwerp, Belgium.

出版信息

Phys Chem Chem Phys. 2019 Jan 23;21(4):1988-2005. doi: 10.1039/c8cp06423g.

Abstract

Raman and specifically Raman optical activity (ROA) spectroscopy are very sensitive to the solution structure and conformation of biomolecules. Because of this strong conformational sensitivity, density functional theory (DFT) calculations are often used to get a better understanding of the experimentally observed spectral patterns. While e.g. for carbohydrate structure the water molecules that surround the solute have been demonstrated to be of vital importance to get accurate modelled ROA spectra, the effect of explicit water molecules on the calculated ROA patterns of peptides and proteins is less well studied. Here, the effect of protein backbone hydration was studied using DFT calculations of HCO-(l-Ala)5-NH2 in specific secondary structure conformations with different treatments of the solvation. The effect of the explicit water molecules on the calculated spectra mainly arises from the formation of hydrogen bonds with the amide C[double bond, length as m-dash]O and N-H groups. Hydrogen bonding of water with the C[double bond, length as m-dash]O group determines the shape and position of the amide I band. The C[double bond, length as m-dash]O bond length increases upon formation of C[double bond, length as m-dash]OH2O hydrogen bonds. The effect of the explicit water molecules on the amide III vibrations arises from hydrogen bonding of the solvent with both the C[double bond, length as m-dash]O and N-H group, but their contributions to this spectral region differ: geometrically, the formation of a C[double bond, length as m-dash]OH2O bond decreases the C-N bond length, while upon forming a N-HH2O hydrogen bond, the N-H bond length increases.

摘要

拉曼光谱,特别是拉曼旋光(ROA)光谱对生物分子的溶液结构和构象非常敏感。由于这种强烈的构象敏感性,密度泛函理论(DFT)计算经常被用于更好地理解实验观察到的光谱模式。例如,对于碳水化合物结构,已经证明围绕溶质的水分子对于获得准确的建模 ROA 光谱至关重要,而对于肽和蛋白质的计算 ROA 模式,明确水分子的影响研究得较少。在这里,使用 DFT 计算了 HCO-(l-Ala)5-NH2 在不同溶剂化处理下的特定二级结构构象,研究了蛋白质骨架水合的影响。明确水分子对计算光谱的影响主要来自与酰胺 C[双键,长度为 m-dash]O 和 N-H 基团形成氢键。水分子与 C[双键,长度为 m-dash]O 基团的氢键决定了酰胺 I 带的形状和位置。形成 C[双键,长度为 m-dash]OH2O 氢键会导致 C[双键,长度为 m-dash]O 键长增加。明确水分子对酰胺 III 振动的影响来自溶剂与 C[双键,长度为 m-dash]O 和 N-H 基团的氢键相互作用,但它们对该光谱区域的贡献不同:从几何角度来看,形成 C[双键,长度为 m-dash]OH2O 键会减小 C-N 键长,而形成 N-HH2O 氢键时,N-H 键长会增加。

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