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黄酮类化合物作为羟基自由基的高效清除剂。

Flavonoids as Potent Scavengers of Hydroxyl Radicals.

作者信息

Treml Jakub, Šmejkal Karel

机构信息

Faculty of Pharmacy, Dept. of Molecular Biology and Pharmaceutical Biotechnology, Univ. of Veterinary and Pharmaceutical Sciences Brno, Palackého tř. 1, 612 42, Brno, Czech Republic.

出版信息

Compr Rev Food Sci Food Saf. 2016 Jul;15(4):720-738. doi: 10.1111/1541-4337.12204. Epub 2016 Apr 13.

DOI:10.1111/1541-4337.12204
PMID:33401843
Abstract

Oxidative stress is a fundamental principle in the pathophysiology of many diseases. It occurs when the production of reactive oxygen species exceeds the capacity of the cell defense system. The hydroxyl radical is a reactive oxygen species that is commonly formed in vivo and can cause serious damage to biomolecules, such as lipids, proteins, and nucleic acids. It plays a role in inflammation-related diseases, like chronic inflammation, neurodegeneration, and cancer. To overcome excessive oxidative stress and thus to prevent or stop the progression of diseases connected to it, scientists try to combat oxidative stress and to find antioxidant molecules, including those that scavenge hydroxyl radical or diminish its production in inflamed tissues. This article reviews various methods of hydroxyl radical production and scavenging. Further, flavonoids, as natural plant antioxidants and essential component of the human diet, are reviewed as compounds interacting with the production of hydroxyl radicals. The relationship between hydroxyl radical scavenging and the structure of the flavonoids is discussed. The structural elements of the flavonoid molecule most important for hydroxyl radical scavenging are hydroxylation of ring B and a C2-C3 double bond connected with a C-3 hydroxyl group and a C-4 carbonyl group. Hydroxylation of ring A also enhances the activity, as does the presence of gallate and galactouronate moieties as substituents on the flavonoid skeleton.

摘要

氧化应激是许多疾病病理生理学中的一个基本原理。当活性氧的产生超过细胞防御系统的能力时,就会发生氧化应激。羟基自由基是一种在体内普遍形成的活性氧,可对生物分子如脂质、蛋白质和核酸造成严重损害。它在与炎症相关的疾病中起作用,如慢性炎症、神经退行性变和癌症。为了克服过度的氧化应激,从而预防或阻止与之相关的疾病进展,科学家们试图对抗氧化应激并寻找抗氧化分子,包括那些清除羟基自由基或减少其在炎症组织中产生的分子。本文综述了羟基自由基产生和清除的各种方法。此外,黄酮类化合物作为天然植物抗氧化剂和人类饮食的重要组成部分,作为与羟基自由基产生相互作用的化合物进行了综述。讨论了羟基自由基清除与黄酮类化合物结构之间的关系。对羟基自由基清除最重要的黄酮类分子结构元素是B环羟基化以及与C-3羟基和C-4羰基相连的C2-C3双键。A环羟基化以及黄酮类骨架上存在没食子酸和半乳糖醛酸部分作为取代基也会增强活性。

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