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Structures of Astaxanthin and Their Consequences for Therapeutic Application

机译:虾青素的结构及其对治疗应用的后果

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Reactive oxygen species (ROS) are continuously generated as a by-product of normal aerobic metabolism. Elevated ROS formation leads to potential damage of biological structures and is implicated in various diseases. Astaxanthin, a xanthophyll carotenoid, is a secondary metabolite responsible for the red-orange color of a number of marine animals and microorganisms. There is mounting evidence that astaxanthin has powerful antioxidant, anti-inflammatory, and antiapoptotic activities. Hence, its consumption can result in various health benefits, with potential for therapeutic application. Astaxanthin contains both a hydroxyl and a keto group, and this unique structure plays important roles in neutralizing ROS. The molecule quenches harmful singlet oxygen, scavenges peroxyl and hydroxyl radicals and converts them into more stable compounds, prevents the formation of free radicals, and inhibits the autoxidation chain reaction. It also acts as a metal chelator and converts metal prooxidants into harmless molecules. However, like many other carotenoids, astaxanthin is affected by the environmental conditions, e.g., pH, heat, or exposure to light. It is hence susceptible to structural modification, i.e., via isomerization, aggregation, or esterification, which alters its physiochemical properties. Here, we provide a concise overview of the distribution of astaxanthin in tissues, and astaxanthin structures, and their role in tackling singlet oxygen and free radicals. We highlight the effect of structural modification of astaxanthin molecules on the bioavailability and biological activity. These studies suggested that astaxanthin would be a promising dietary supplement for health applications.
机译:活性氧物质(ROS)作为正常有氧代谢的副产物不断产生。升高的ROS形成导致生物结构的潜在损害,并涉及各种疾病。虾青素是Xanthophyll类胡萝卜素,是次级代谢物,负责许多海洋动物和微生物的红橙色。有证据表明虾青素具有强大的抗氧化剂,抗炎和抗污染活动。因此,其消耗可能导致各种健康益处,具有治疗应用的潜力。虾青素含有羟基和酮基团,这种独特的结构在中和ROS中起重要作用。分子淬灭有害的单态氧,清除过氧基和羟基,并将它们转化成更稳定的化合物,防止形成自由基,并抑制自动氧化链反应。它还充当金属螯合剂,将金属寄射剂转化为无害分子。然而,与许多其他类胡萝卜素一样,虾青素受到环境条件的影响,例如pH,热量或暴露于光。因此,易于构造修饰,即通过异构化,聚集或酯化,其改变其生理化学性质。在这里,我们提供了一种简要概述组织中虾青素的分布,以及虾青素结构的分布,以及它们在解决单线氧和自由基中的作用。我们突出了虾青素分子对生物利用度和生物活性的结构改性的影响。这些研究表明,虾青素将是健康应用的有希望的膳食补充剂。

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