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利用振动旋光性研究水合羟酸的氢键二聚倾向。

Double Hydrogen Bonding Dimerization Propensity of Aqueous Hydroxy Acids Investigated Using Vibrational Optical Activity.

机构信息

Institute of Organic Chemistry and Biochemistry of the CAS, Flemingovo nám. 2, 166 10 Prague, Czech Republic.

University of Wyoming, 651 N. 19th Street, Laramie, Wyoming 82072, United States.

出版信息

J Phys Chem B. 2021 Oct 21;125(41):11350-11363. doi: 10.1021/acs.jpcb.1c05480. Epub 2021 Oct 6.

Abstract

Lactic and malic acids are key substances in a number of biochemical processes in living cells and are also utilized in industry. Vibrational spectroscopy represents an efficient and sensitive way to study their structure and interactions. Since water is the natural environment, proper understanding of their molecular dynamics in aqueous solutions is of critical importance. To this end, we employed Raman spectroscopy and Raman optical activity (ROA) to study the conformation of l-lactic and l-malic acids in water (while varying pH, temperature, and concentration), with special emphasis on their double hydrogen bonding dimerization propensity. Raman and ROA experimental data were supported by extensive theoretical calculations of the vibrational properties and by additional experiments (IR absorption, vibrational circular dichroism, and NMR). Conformational behavior of the acids in water was described by molecular dynamics simulations. Reliability of the results was verified by calculating the vibrational properties of populated conformers and by comparing thus obtained spectral features with the experimental data. Calculations estimated the incidence of H-bonded dimers in water to be low in lactic acid and comparable to monomers in malic acid. The "hybrid" approach presented here reveals limitations of relying on the experimental spectra alone to study dimer formation.

摘要

乳酸和苹果酸是许多活细胞生化过程中的关键物质,也在工业中得到应用。振动光谱学是研究它们结构和相互作用的一种有效且敏感的方法。由于水是自然环境,因此正确理解它们在水溶液中的分子动力学至关重要。为此,我们采用拉曼光谱和拉曼光学活性(ROA)研究了 l-乳酸和 l-苹果酸在水中的构象(同时改变 pH 值、温度和浓度),特别强调了它们的双氢键二聚倾向。拉曼和 ROA 实验数据得到了振动特性的广泛理论计算以及附加实验(IR 吸收、振动圆二色性和 NMR)的支持。通过分子动力学模拟描述了酸在水中的构象行为。通过计算占据构象的振动特性并将由此获得的光谱特征与实验数据进行比较,验证了结果的可靠性。计算估计在水中形成氢键二聚体的乳酸发生率较低,与苹果酸中的单体相当。这里提出的“混合”方法揭示了仅依靠实验光谱研究二聚体形成的局限性。

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