Institute of Pharmacognosy, Interdisciplinary Excellence Centre, University of Szeged, Eötvös str. 6, H-6720, Szeged, Hungary.
Interdisciplinary Centre for Natural Products, University of Szeged, Eötvös str. 6, H-6720, Szeged, Hungary.
Med Res Rev. 2019 Nov;39(6):2505-2533. doi: 10.1002/med.21592. Epub 2019 May 10.
Small molecule, dietary antioxidants exert a remarkably broad range of bioactivities, and many of these can be explained by the influence of antioxidants on the redox homeostasis. Such compounds help to modulate the levels of harmful reactive oxygen/nitrogen species, and therefore participate in the regulation of various redox signaling pathways. However, upon ingestion, antioxidants usually undergo extensive metabolism that can generate a wide range of bioactive metabolites. This makes it difficult, but otherwise a need, to identify the ones responsible for the different activities of antioxidants. By better understanding their ways of action, the use of antioxidants in therapy can be improved. This review provides a summary on the role of the in vivo metabolic changes and the oxidized metabolites on the mechanisms behind the bioactivity of antioxidants. A special attention is given to metabolites described as products of biomimetic oxidative chemical reactions, which can be considered as models of free radical scavenging. During such reactions a wide variety of metabolites are formed, and they can exert completely different specific bioactivities as compared to their parent antioxidants. This implies that exploring the free radical scavenging-related metabolite fingerprint of each antioxidant molecule, collectively defined here as the scavengome, will lead to a deeper understanding of the bioactivity of these compounds. Furthermore, this paper aims to be a working tool for systematic studies on oxidized metabolic fingerprints of antioxidants, which will certainly reveal an often-neglected segment of chemical space that is a treasury of bioactive compounds.
小分子、膳食抗氧化剂发挥着广泛的生物活性,其中许多可以通过抗氧化剂对氧化还原平衡的影响来解释。这些化合物有助于调节有害活性氧/氮物种的水平,因此参与各种氧化还原信号通路的调节。然而,在摄入后,抗氧化剂通常会经历广泛的代谢,从而产生广泛的生物活性代谢物。这使得确定哪些代谢物负责抗氧化剂的不同活性变得困难,但又有必要。通过更好地了解它们的作用方式,可以改进抗氧化剂在治疗中的应用。本综述总结了体内代谢变化和氧化代谢物在抗氧化剂生物活性机制中的作用。特别关注被描述为仿生氧化化学反应产物的代谢物,这些代谢物可以被视为自由基清除的模型。在这些反应中会形成各种各样的代谢物,它们与母体抗氧化剂相比,可以发挥完全不同的特定生物活性。这意味着探索每个抗氧化剂分子的自由基清除相关代谢指纹图谱(在这里被集体定义为“scavengome”)将深入了解这些化合物的生物活性。此外,本文旨在成为系统研究抗氧化剂氧化代谢指纹图谱的实用工具,这肯定会揭示出一个经常被忽视的化学空间部分,其中蕴藏着丰富的生物活性化合物。