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首页> 外文期刊>Journal of the Serbian Chemical Society >The reactivity of dopamine precursors and metabolites towards ABTS?-: An experimental and theoretical study
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The reactivity of dopamine precursors and metabolites towards ABTS?-: An experimental and theoretical study

机译:多巴胺前体和代谢产物对ABTS?-的反应性:实验和理论研究

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The antiradical activity of L-3,4-dihydroxyphenylalanine (L-DOPA), dihydroxyphenylacetic acid (DOPAC), homovanillic acid and tyrosine towards 2,2′-azino-bis(3-ethylbenzothiazoline-6-sulphonic acid) diammonium salt radical (ABTS?-) was investigated experimentally and theoretically by UV–Vis spectroscopy and the DFT theory. The importance of the catechol moiety for this reaction was proven due to the formation of intramolecular hydrogen bond in the formed anions and radicals. The results indicated L-DOPA and DOPAC were more potent radical scavengers than homovanillic acid and tyrosine just because of intramolecular hydrogen bond formation. Based on experimental spectra, it was proved that electron transfer led to the reduction of ABTS?-. The values of thermodynamic parameters were used to predict the preferred mechanism. The reaction rates were calculated for the electron transfer processes and it was shown that these were both kinetically and thermodynamically driven processes. Based on the reaction rate values, thermodynamic parameters, and present species, as determined by electronic spectra, it was concluded that single proton loss electron transfer (SPLET) is the dominant reaction mechanism in the investigated system.
机译:L-3,4-二羟基苯丙氨酸(L-DOPA),二羟基苯基乙酸(DOPAC),高香草酸和酪氨酸对2,2'-叠氮基双(3-乙基苯并噻唑啉-6-磺酸)二铵盐自由基的抗自由基活性(通过UV-Vis光谱和DFT理论对ABTS?-)进行了实验和理论研究。由于在形成的阴离子和自由基中分子内氢键的形成,证明了邻苯二酚部分对该反应的重要性。结果表明,仅由于分子内氢键形成,L-DOPA和DOPAC比高香草酸和酪氨酸更有效地清除自由基。根据实验光谱证明,电子转移导致ABTSβ-的减少。热力学参数的值用于预测优选的机理。计算了电子转移过程的反应速率,结果表明这些都是动力学和热力学驱动过程。根据电子光谱确定的反应速率值,热力学参数和存在的种类,可以得出结论:单质子损失电子转移(SPLET)是所研究系统的主要反应机理。

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