Panuszko Aneta, Adamczak Beata, Czub Jacek, Gojło Emilia, Stangret Janusz
Department of Physical Chemistry, Chemical Faculty, Gdańsk University of Technology, Narutowicza 11/12, 80-233, Gdańsk, Poland.
Amino Acids. 2015 Nov;47(11):2265-78. doi: 10.1007/s00726-015-2005-2. Epub 2015 May 23.
The hydration of selected amino acids, alanine, glycine, proline, valine, isoleucine and phenylalanine, has been studied in aqueous solutions by means of FTIR spectra of HDO isotopically diluted in H2O. The difference spectra procedure and the chemometric method have been applied to remove the contribution of bulk water and thus to separate the spectra of solute-affected HDO. To support interpretation of obtained spectral results, molecular dynamics simulations of amino acids were performed. The structural-energetic characteristic of these solute-affected water molecules shows that, on average, water affected by amino acids forms stronger and shorter H-bonds than those in pure water. Differences in the influence of amino acids on water structure have been noticed. The effect of the hydrophobic side chain of an amino acid on the solvent interactions seems to be enhanced because of the specific cooperative coupling of water strong H-bond chain, connecting the carboxyl and amino groups, with the clathrate-like H-bond network surrounding the hydrocarbon side chain. The parameter derived from the spectral data, which corresponds to the contributions of the population of weak hydrogen bonds of water molecules which have been substituted by the stronger ones in the hydration sphere of amino acids, correlated well with the amino acid hydrophobicity indexes.
通过在H₂O中同位素稀释的HDO的FTIR光谱,研究了水溶液中选定氨基酸(丙氨酸、甘氨酸、脯氨酸、缬氨酸、异亮氨酸和苯丙氨酸)的水合作用。采用差谱法和化学计量学方法去除大量水的贡献,从而分离出溶质影响的HDO的光谱。为了支持对所得光谱结果的解释,进行了氨基酸的分子动力学模拟。这些溶质影响的水分子的结构 - 能量特征表明,平均而言,受氨基酸影响的水形成的氢键比纯水中的更强、更短。已注意到氨基酸对水结构影响的差异。由于连接羧基和氨基的水强氢键链与围绕烃侧链的笼状氢键网络的特定协同耦合,氨基酸疏水侧链对溶剂相互作用的影响似乎增强。从光谱数据得出的参数,对应于在氨基酸水合球中被更强氢键取代的水分子弱氢键群体的贡献,与氨基酸疏水性指数具有良好的相关性。