咖啡酸的抗氧化活性:氧化降解途径的热力学和动力学方面。

IF 3.6 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY
Aiswarya Purushothaman, Smrithi S Babu, Surya Naroth, Deepa Janardanan
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引用次数: 0

摘要

咖啡酸是一种来自植物的酚类次生代谢物,以其抗氧化特性而闻名。咖啡酸对甲醇诱导的氧化应激的有效缓解依赖于直接清除自由基以及通过氧化降解形成新的代谢物。本文首次利用密度泛函理论(DFT)对咖啡酸在自由基ch30•及其异构体•CH2OH存在下氧化降解途径的热力学和动力学方面进行了讨论。通过氢原子转移(HAT)和自由基加合物形成(RAF)机制验证了咖啡酸对这些自由基的直接清除活性。计算结果表明,HAT机制比RAF机制更可行。此外,本文还分析了自由基加合物中间体形成环状代谢物的氧化降解途径的能量细节。动力学研究表明,具有高活化屏障的H提取途径具有显著的隧道效应。此外,我们的研究结果表明,新形成的代谢物具有与咖啡酸相当的抗氧化活性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Antioxidant activity of caffeic acid: thermodynamic and kinetic aspects on the oxidative degradation pathway.

Caffeic acid is a phenolic secondary metabolite from plants, which is known for its antioxidant properties. The effective mitigation of methanol-induced oxidative stress by caffeic acid depends on the direct radical scavenging as well as the formation of new metabolites via oxidative degradation. Herein, thermodynamic and kinetic aspects of the oxidative degradation pathway of caffeic acid in the presence of radical CH3O and its isomer, CH2OH are discussed for the first time, employing density functional theory (DFT). The direct radical scavenging activity of caffeic acid against these radicals is verified via hydrogen atom transfer (HAT) and radical adduct formation (RAF) mechanisms. HAT is predicted to be more feasible than RAF mechanism as per the computed data. Additionally, energetic details of the proposed oxidative degradation pathway of radical adduct intermediates toward the formation of a cyclic metabolite is analyzed. Kinetic studies indicated a significant tunneling contribution to the H abstraction pathways having high activation barriers. Further, our results imply that the newly formed metabolites exhibit comparable antioxidant activity with that of caffeic acid.

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来源期刊
Free Radical Research
Free Radical Research 生物-生化与分子生物学
CiteScore
6.70
自引率
0.00%
发文量
47
审稿时长
3 months
期刊介绍: Free Radical Research publishes high-quality research papers, hypotheses and reviews in free radicals and other reactive species in biological, clinical, environmental and other systems; redox signalling; antioxidants, including diet-derived antioxidants and other relevant aspects of human nutrition; and oxidative damage, mechanisms and measurement.
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