首页> 美国卫生研究院文献>International Journal of Molecular Sciences >Toward the Understanding of the Metabolism of Levodopa I. DFT Investigation of the Equilibrium Geometries Acid-Base Properties and Levodopa-Water Complexes
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Toward the Understanding of the Metabolism of Levodopa I. DFT Investigation of the Equilibrium Geometries Acid-Base Properties and Levodopa-Water Complexes

机译:对左旋多巴代谢的理解I.平衡几何酸碱性质和左旋多巴-水络合物的DFT研究

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摘要

Levodopa (LD) is used to increase dopamine level for treating Parkinson’s disease. The major metabolism of LD to produce dopamine is decarboxylation. In order to understand the metabolism of LD; the electronic structure of levodopa was investigated at the Density Functional DFT/B3LYP level of theory using the 6-311+G** basis set, in the gas phase and in solution. LD is not planar, with the amino acid side chain acting as a free rotator around several single bonds. The potential energy surface is broad and flat. Full geometry optimization enabled locating and identifying the global minimum on this Potential energy surface (PES). All possible protonation/deprotonation forms of LD were examined and analyzed. Protonation/deprotonation is local in nature, i.e., is not transmitted through the molecular framework. The isogyric protonation/deprotonation reactions seem to involve two subsequent steps: First, deprotonation, then rearrangement to form H-bonded structures, which is the origin of the extra stability of the deprotonated forms. Natural bond orbital (NBO) analysis of LD and its deprotonated forms reveals detailed information of bonding characteristics and interactions across the molecular framework. The effect of deprotonation on the donor-acceptor interaction across the molecular framework and within the two subsystems has also been examined. Attempts to mimic the complex formation of LD with water have been performed.
机译:左旋多巴(LD)用于提高多巴胺水平,以治疗帕金森氏病。 LD产生多巴胺的主要代谢是脱羧。为了了解LD的代谢;左旋多巴的电子结构在理论上使用密度函数DFT / B3LYP进行了研究,采用6-311 + G **基集在气相和溶液中进行。 LD不是平面的,氨基酸侧链充当围绕几个单键的自由旋转子。势能面宽而平坦。全面的几何优化可在此势能面(PES)上定位和识别全局最小值。检查并分析了LD的所有可能的质子化/去质子化形式。质子化/去质子化本质上是局部的,即不通过分子框架传递。等旋质子化/去质子化反应似乎涉及两个后续步骤:首先是去质子化,然后重排以形成H键结构,这是去质子化形式额外稳定的起源。 LD及其去质子形式的天然键轨道(NBO)分析揭示了键特征和整个分子框架间相互作用的详细信息。还研究了去质子化对整个分子框架以及两个子系统内的供体-受体相互作用的影响。已经尝试模仿水与LD的复杂形成。

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