Institute of Organic Chemistry and Biochemistry, Academy of Sciences , Flemingovo náměstí 2, 16610 Prague, Czech Republic.
Faculty of Mathematics and Physics, Charles University , Ke Karlovu 3, 12116 Prague, Czech Republic.
J Phys Chem B. 2017 Sep 28;121(38):8956-8964. doi: 10.1021/acs.jpcb.7b07154. Epub 2017 Sep 18.
Raman optical activity (ROA) spectroscopy combined with quantum-chemical simulations is a sensitive method to determine the absolute configuration and conformation of chiral molecules in solutions. However, the precision of this approach varies for different systems. In the present study, the reliability and numerical stability of decomposing experimental spectra into calculated subspectra is tested on the Ala-Ala dipeptide. Molecular dynamics (MD) snapshots of Ala-Ala/water clusters are averaged to account for solvent effects and molecular flexibility. Multiple experiments with protonated, zwitterionic, and deprotonated dipeptide forms and natural and d- and d-isotopically labeled dipeptides are used to verify the results and estimate the overall accuracy. Although the precision is still limited by experimental noise and computational error, a very close match between the observed and theoretical spectral shapes has been achieved. This enabled quantitative determination of conformer populations with a typical dispersion of 10%. The spectroscopy also demonstrated how the conformation depends on pH. The ROA results were more consistent than the Raman ones. Typically, the ROA analysis was more resistant to artifacts in the experiment, such as incomplete baseline subtraction. Conformer ratios predicted by MD agree fairly but not fully with the experimental ones. This indicates minor deficiencies in the Amber force field, particularly for the protonated dipeptide. Overall, the combination of ROA experiment and computational chemistry appears to be a robust tool providing deep insight into molecular structure.
拉曼光学活性(ROA)光谱结合量子化学模拟是一种确定手性分子在溶液中绝对构型和构象的灵敏方法。然而,这种方法的精度因不同的体系而异。在本研究中,通过对丙氨酰-丙氨酸二肽进行测试,检验了将实验光谱分解为计算子光谱的可靠性和数值稳定性。对丙氨酰-丙氨酸/水团簇的分子动力学(MD)快照进行平均,以考虑溶剂效应和分子柔性。使用质子化、两性离子和去质子化二肽形式以及天然和 d-和 d-同位素标记二肽的多次实验来验证结果并估计整体精度。尽管精度仍然受到实验噪声和计算误差的限制,但观察到的和理论光谱形状之间已经达到了非常接近的匹配。这使得能够以 10%的典型分散定量确定构象体的丰度。光谱学还演示了构象如何取决于 pH 值。ROA 的结果比拉曼的结果更一致。通常,ROA 分析对实验中的伪影(例如基线不完全扣除)更具抗性。MD 预测的构象比与实验结果相当,但并不完全一致。这表明 Amber 力场存在一些小缺陷,特别是对于质子化的二肽。总体而言,ROA 实验和计算化学的结合似乎是一种稳健的工具,能够深入了解分子结构。