Cheng Zhiyong, Ren Jie, Yan Guangtao, Li Yuanzong, Chang Wenbao, Chen Zhida
Department of Chemical Biology, College of Chemistry and Molecular Engineering, Peking University, Beijing 100871, China.
Bioorg Chem. 2003 Apr;31(2):149-62. doi: 10.1016/s0045-2068(03)00027-0.
Reported discrepancies have confused the understanding of the molecular mechanisms of antioxidant reactivity somewhat. The consequent problems necessitate systematic investigations on the molecular orbital features of antioxidants and their correlation with antioxidant potentials. In the present work, phenolic compounds as typical antioxidants were selected to investigate their hydroxyl radical-scavenging properties, and the related mechanisms of action were studied theoretically by computational chemistry. A good correlation was observed between antioxidant activity and theoretical parameters, such as O-H bond dissociation energy (BDE), ionization potential (IP), enthalpy of electron transfer (E(a)), chemical hardness (HOMO-LUMO gap), and spin delocalization of the phenoxyl radicals (D(s)(r)). The results demonstrate that the molecular mechanisms regulating the antioxidant action were more complex than hydrogen or electron-transfer processes and explain previous contradictions. Meanwhile, a satisfactory quantitative structure-activity relationship (QSAR) model was established which should be of predictive value in evaluating or screening hydroxyl radical-scavenging antioxidants.
已报道的差异在一定程度上混淆了对抗氧化剂反应性分子机制的理解。由此产生的问题使得有必要对抗氧化剂的分子轨道特征及其与抗氧化潜力的相关性进行系统研究。在本工作中,选择酚类化合物作为典型抗氧化剂来研究其清除羟基自由基的性能,并通过计算化学从理论上研究相关作用机制。观察到抗氧化活性与理论参数之间存在良好的相关性,如O-H键解离能(BDE)、电离势(IP)、电子转移焓(E(a))、化学硬度(HOMO-LUMO能隙)以及苯氧自由基的自旋离域(D(s)(r))。结果表明,调节抗氧化作用的分子机制比氢或电子转移过程更为复杂,并解释了先前的矛盾之处。同时,建立了一个令人满意的定量构效关系(QSAR)模型,该模型在评估或筛选羟基自由基清除型抗氧化剂方面应具有预测价值。