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首页> 外文期刊>Fish Physiology and Biochemistry >Does dietary tocopherol level affect fatty acid metabolism in fish?
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Does dietary tocopherol level affect fatty acid metabolism in fish?

机译:饮食中的生育酚水平会影响鱼类的脂肪酸代谢吗?

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Fish are a rich source of the n-3 polyunsaturated fatty acids (PUFA), particularly the highly unsaturated fatty acids (HUFA) eicosapentaenoic (EPA; 20:5n-3) and docosahexaenoic (DHA; 22:6n-3) acids, which are vital constituents for cell membrane structure and function, but which are also highly susceptible to attack by oxygen and other organic radicals. Resultant damage to PUFA in membrane phospholipids can have serious consequences for cell membrane structure and function, with potential pathological effects on cells and tissues. Physiological antioxidant protection involves both endogenous components, such as free-radical-scavenging enzymes, and exogenous dietary micronutrients including tocopherols and tocotrienols, the vitamin E-type compounds widely regarded as the primary lipid-soluble antioxidants. The antioxidant activities of tocopherols are imparted by their ability to donate their phenolic hydrogen atoms to lipid (fatty acid) free radicals, resulting in the stabilization of the latter and the termination of the lipid peroxidation chain reaction. However, tocopherols can also prevent PUFA peroxidation by acting as quenchers of singlet oxygen. Recent studies on marine fish have shown correlations between dietary and tissue PUFA/tocopherol ratios and incidence of lipid peroxidation, as indicated by the levels of thiobarbituric-acid reactive substances (TBARS) and isoprostanes. These studies also showed that feeding diets containing oxidized oil significantly affected the activities of liver antioxidant defence enzymes and that dietary tocopherol partially attenuated these effects. However, there is evidence that dietary tocopherols can affect fatty acid metabolism in other ways. An increase in membrane PUFA was observed in rats deficient in vitamin E. This was suggested to be due to overproduction of PUFA arising from increased activity of the desaturation/elongation mechanisms responsible for the synthesis of PUFA. Consistent with this, increased desaturation of 18:3n-3 and 20:5n-3 in hepatocytes from salmon fed diets deficient in tocopherol and/or astaxanthin has been observed. Although the mechanism is unclear, tocopherols may influence the biosynthesis of n-3PUFA through alteration of cellular oxidation potential or peroxide tone.
机译:鱼是n-3多不饱和脂肪酸(PUFA)的丰富来源,尤其是高不饱和脂肪酸(HUFA)二十碳五烯酸(EPA; 20:5n-3)和二十二碳六烯酸(DHA; 22:6n-3)的酸,是细胞膜结构和功能的重要组成部分,但它们也极易受到氧气和其他有机自由基的攻击。膜磷脂中PUFA的最终破坏可能对细胞膜结构和功能产生严重影响,并对细胞和组织产生潜在的病理影响。生理抗氧化剂的保护涉及内在成分,例如自由基清除酶,以及外源饮食中的微量营养素,包括生育酚和生育三烯酚,维生素E型化合物被广泛认为是主要的脂溶性抗氧化剂。生育酚的酚类氢原子向脂质(脂肪酸)自由基的贡献能力使生育酚具有抗氧化活性,从而使后者稳定并终止脂质过氧化链反应。但是,生育酚还可以通过用作单线态氧的猝灭剂来防止PUFA过氧化。最近对海水鱼类的研究表明,饮食和组织中PUFA /生育酚的比例与脂质过氧化发生率之间的相关性,如硫代巴比妥酸反应性物质(TBARS)和异前列腺素的水平所表明。这些研究还表明,饲喂含氧化油的饮食会显着影响肝脏抗氧化防御酶的活性,饮食中的生育酚会部分削弱这些作用。但是,有证据表明饮食中的生育酚可以其他方式影响脂肪酸代谢。在缺乏维生素E的大鼠中观察到膜PUFA的增加。这被认为是由于负责PUFA合成的去饱和/延伸机制活性增加导致PUFA过量生产。与此相一致,已经观察到在缺乏生育酚和/或虾青素的鲑鱼饲料中,肝细胞中18:3n-3和20:5n-3的去饱和增加。尽管机理尚不清楚,但生育酚可能会通过改变细胞氧化电位或过氧化物色调来影响n-3PUFA的生物合成。

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