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-取代基对酚类树枝状抗氧化剂抗氧化活性影响的计算研究

Computational Study of -Substituent Effects on Antioxidant Activities of Phenolic Dendritic Antioxidants.

作者信息

Lee Choon Young, Sharma Ajit, Semenya Julius, Anamoah Charles, Chapman Kelli N, Barone Veronica

机构信息

Department of Chemistry and Biochemistry, Central Michigan University, Mount Pleasant, MI 48859, USA.

Department of Physics and Science of Advanced Materials Program, Central Michigan University, Mount Pleasant, MI 48859, USA.

出版信息

Antioxidants (Basel). 2020 Feb 25;9(3):189. doi: 10.3390/antiox9030189.

Abstract

Antioxidants are an important component of our ability to combat free radicals-an excess of which leads to oxidative stress, which is related to aging and numerous human diseases. Oxidative damage also shortens the shelf-life of foods and other commodities. Understanding the structure-activity relationship of antioxidants and their mechanisms of action is important for designing more potent antioxidants for potential use as therapeutic agents as well as preservatives. We report the first computational study on the electronic effects of -substituents in dendritic tri-phenolic antioxidants, comprising a common phenol moiety and two other phenol units with electron-donating or electron-withdrawing substituents. Among the three proposed antioxidant mechanisms, sequential proton loss electron transfer (SPLET) was found to be the preferred mechanism in methanol for the dendritic antioxidants based on calculations using Gaussian 16. We then computed the total enthalpy values by cumulatively running SPLET for all three rings to estimate electronic effects of substituents on overall antioxidant activity of each dendritic antioxidant and establish their structure-activity relationships. Our results show that the electron-donating -OCH group has a beneficial effect while the electron-withdrawing -NO group has a negative effect on the antioxidant activity of the dendritic antioxidant. The -Br and -Cl groups did not show any appreciable effects. These results indicate that electron-donating groups such as -methoxy are useful for designing potent dendritic antioxidants while the nitro and halogens do not add value to the radical scavenging antioxidant activity. We also found that the half-maximal inhibitory concentration (IC50) values of 2,2-diphenyl-1-picrylhydrazyl (DPPH) better correlate with the second step (electron transfer enthalpy, ETE) than the first step (proton affinity, PA) of the SPLET mechanism, implying that ETE is the better measure for estimating overall radical scavenging antioxidant activities.

摘要

抗氧化剂是我们对抗自由基能力的重要组成部分,自由基过量会导致氧化应激,而氧化应激与衰老和众多人类疾病相关。氧化损伤还会缩短食品和其他商品的保质期。了解抗氧化剂的构效关系及其作用机制,对于设计更有效的抗氧化剂作为潜在治疗剂和防腐剂至关重要。我们报告了关于树枝状三酚类抗氧化剂中 - 取代基电子效应的首次计算研究,该抗氧化剂包含一个常见的酚部分和另外两个带有供电子或吸电子取代基的酚单元。在提出的三种抗氧化机制中,基于使用高斯16进行的计算,发现顺序质子损失电子转移(SPLET)是甲醇中树枝状抗氧化剂的首选机制。然后,我们通过对所有三个环累积运行SPLET来计算总焓值,以估计取代基对每个树枝状抗氧化剂整体抗氧化活性的电子效应,并建立它们的构效关系。我们的结果表明,供电子的 -OCH 基团具有有益作用,而吸电子的 -NO 基团对树枝状抗氧化剂的抗氧化活性具有负面影响。-Br 和 -Cl 基团没有显示出任何明显的影响。这些结果表明,诸如 - 甲氧基之类的供电子基团可用于设计有效的树枝状抗氧化剂,而硝基和卤素对自由基清除抗氧化活性没有增加价值。我们还发现,2,2 - 二苯基 -1 - 苦基肼(DPPH)的半数抑制浓度(IC50)值与SPLET机制的第二步(电子转移焓,ETE)比第一步(质子亲和力,PA)具有更好的相关性,这意味着ETE是估计整体自由基清除抗氧化活性的更好指标。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bc11/7139565/7ec25e8cd3fd/antioxidants-09-00189-g001.jpg

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