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Zwitterionization of glycine in water environment: Stabilization mechanism and NMR spectral signatures

机译:水环境中甘氨酸的两倍化:稳定机制和NMR光谱签名

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At physiological conditions, myriads of biomolecules (e.g., amino acids, peptides, and proteins) exist predominantly in the zwitterionic structural form and their biological functions will result in these conditions. However these geometrical structures are inaccessible energetically in the gas phase, and at this point, stabilization of amino-acids in physiological conditions is still under debate. In this paper, the electronic properties of a glycine molecule in the liquid environment were studied by performing a relaxation of the glycine geometry in liquid water using the free energy gradient method combined with a sequential quantum mechanics/molecular mechanics approach. A series of Monte Carlo Metropolis simulations of the glycine molecule embedded in liquid water, followed by only a quantum mechanical calculation in each of them were carried out. Both the local and global liquid environments were emphasized to obtain nuclear magnetic resonance (NMR) parameters for the glycine molecule in liquid water. The results of the equilibrium structure in solution and the systematic study of the hydrogen bonds were used to discard the direct proton transfer from the carboxyl group to the ammonium group of the glycine molecule in water solution. The calculations of the Density Functional Theory (DFT) were performed to study the polarization of the solvent in the parameters of nuclear magnetic resonance of the glycine molecule in liquid water. DFT calculations predicted isotropic chemical changes on the H, C, N, and O atoms of glycine in liquid water solution which agree with the available experimental data. Published by AIP Publishing.
机译:在生理条件下,在两性离子结构形式中主要存在的生物分子(例如,氨基酸,肽和蛋白质),其生物学功能将导致这些条件。然而,这些几何结构在气相中能够在气相中能够难以接近,此时仍在辩论中稳定生理条件下的氨基酸。本文通过使用自由能梯度法与顺序量子力学/分子力学方法进行液态水中的甘氨酸几何形状进行溶解,研究了液体环境中甘氨酸分子的电子性质。进行了嵌入液态水中的甘氨酸分子的一系列蒙特卡罗大都会模拟,然后在它们中的每一个中进行量子力学计算。本地和全球的液体环境中强调,以获得在液态水的甘氨酸分子核磁共振(NMR)的参数。溶液中平衡结构的结果和氢键的系统研究用于丢弃从羧基的直接质子转移到水溶液中甘氨酸分子的铵基。进行密度泛函理论(DFT)的计算,以研究液体水中甘氨酸分子核磁共振参数中溶剂的偏振。 DFT计算预测液态水溶液中H,C,N和O原子的各向同性化学变化,其与可用的实验数据一致。通过AIP发布发布。

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