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水溶液中多巴胺去质子化过程中所涉及化学物种性质的新见解:理论与实验研究

New insights on the nature of the chemical species involved during the process of dopamine deprotonation in aqueous solution: theoretical and experimental study.

作者信息

Corona-Avendaño Silvia, Alarcón-Angeles Georgina, Rosquete-Pina Giselle A, Rojas-Hernández Alberto, Gutierrez Atilano, Ramírez-Silva M Teresa, Romero-Romo Mario, Palomar-Pardavé Manuel

机构信息

Universidad Autónoma Metropolitana-Iztapalapa, Departamento de Química, Av. San Rafael Atlixco #186, Col. Vicentina, C. P. 09340, México, D. F.

出版信息

J Phys Chem B. 2007 Feb 22;111(7):1640-7. doi: 10.1021/jp0637227. Epub 2007 Jan 27.

Abstract

Due to dopamine's chemical structure and the fact that it has three pKa values, its deprotonation process, in aqueous solution, may involve different chemical species. For instance, the first deprotonation step, from the fully protonated dopamine molecule (H3DA+) to the neutral one (H2DA), will result in zwitterionic species if a proton from one of the OH groups in the catechol ring is lost or into a neutral species if the proton is lost from the amino group. Given that the interaction of such a product with its environment will be quite different depending on its nature, it is very important, therefore, to have an accurate knowledge of which is the dopamine chemical species that results after each deprotonation step. In order to gain a better understanding of dopamine chemistry and to establish a plausible dopamine deprotonation pathway, the optimized geometries of the aforementioned species were calculated in this work by means of the density functionals theory (B3LYP/6-311+G(d,p)) in both cases: in vacuo and with solvent effect, to assess, among other theoretical criteria, the proton affinities of the different dopamine species. This permitted us to propose the following reaction pathway: [reaction in text]. Moreover, the calculations of the chemical shift (NMR-GIAO) modeling the effect of the solvent with a continuum method (PCM) was in agreement with the 13C NMR experimental spectra, which confirmed even further the proposed deprotonation pathway.

摘要

由于多巴胺的化学结构以及它具有三个pKa值这一事实,其在水溶液中的去质子化过程可能涉及不同的化学物种。例如,从完全质子化的多巴胺分子(H3DA+)到中性分子(H2DA)的第一步去质子化,如果儿茶酚环中一个OH基团的质子丢失,将产生两性离子物种;如果质子从氨基丢失,则产生中性物种。鉴于此类产物与其环境的相互作用因其性质不同而有很大差异,因此,准确了解每个去质子化步骤后产生的多巴胺化学物种非常重要。为了更好地理解多巴胺化学并建立合理的多巴胺去质子化途径,在这项工作中,通过密度泛函理论(B3LYP/6-311+G(d,p))计算了上述物种在两种情况下的优化几何结构:真空条件下以及考虑溶剂效应,以评估不同多巴胺物种的质子亲和力等理论标准。这使我们能够提出以下反应途径:[文本中的反应]。此外,采用连续介质方法(PCM)模拟溶剂效应的化学位移(NMR-GIAO)计算结果与13C NMR实验光谱一致,这进一步证实了所提出的去质子化途径。

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