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Bioavailability of α-tocopherol stereoisomers in lambs depends on dietary doses of all-rac- or RRR-α-tocopheryl acetate

机译:羊羔中α-生育酚立体异构体的生物利用度取决于膳食剂量的全rac-或RRR-α-生育酰基乙酸酯剂量

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When supplementing lamb diets with vitamin E, an equivalence factor of 1.36 is used to discriminate between RRR-α-tocopheryl acetate and all-rac-α-tocopheryl acetate. However, more recent studies suggest a need for new equivalence factors for livestock animals. The current study aimed to determine the effect of RRR- and all-rac-α-tocopheryl acetate supplementation on α-tocopherol deposition in lamb tissues. A total of 108 Rasa Aragonesa breed lambs were fed increasing amounts of all-rac-α-tocopheryl acetate (0.25, 0.5, 1.0 and 2.0 g/kg compound feed) or RRR-α-tocopheryl acetate (0.125, 0.25, 0.5 and 1.0 g/kg compound feed) by adding them to a basal diet that contained 0.025 g/kg feed of all-rac-α-tocopheryl acetate as part of the standard vitamin and mineral mixture. The diets were fed for the last 14 days before slaughtering at 25.8±1.67 kg BW. Within 20 min after slaughter samples of muscle, heart, liver, brain and spleen were frozen at ?20°C until α-tocopherol analysis. Increased supplementation of either vitamin E sources led to a significant increase (P 0.001) in α-tocopherol concentration in all tissues studied. The tissue with the highest α-tocopherol concentration was the liver followed by spleen, heart and muscle. At similar supplementation levels (0.25, 0.50 and 1.0 g/kg compound feed), α-tocopherol content in the selected tissues was not affected by α-tocopherol source. However, the ratios between RRR- and all-rac-α-tocopheryl acetate increased with the increasing α-tocopherol supplementation (at 0.25 and 1.0 g/kg compound feed), from 1.06 to 1.16 in muscle, 1.07 to 1.15 in heart, 0.91 to 0.94 in liver and 0.98 to 1.10 in spleen. The highest relative proportion of ?2S (sum of SSS-, SSR-, SRS- and SRR-α-tocopherol)-configured stereoisomers was found in the liver of lambs supplemented with all-rac-α-tocopheryl acetate accounting for up to 35 to 39% of the total α-tocopherol retained, whereas the proportion of ?2S-configured stereoisomers in the other tissues accounted for 14%. Increasing all-rac-α-tocopheryl acetate supplementation was also found to affect the 2R-configured stereoisomer profile in muscle, heart and spleen with increasing proportions of RRS-, RSR- and RSS- at the cost of RRR-α-tocopherol. In all tissues, the relative proportion of all non-RRR-stereoisomers in lambs receiving RRR-α-tocopheryl acetate was lower than RRR-α-tocopherol. These results confirm that the relative bioavailability of RRR- and all-rac-α-tocopheryl acetate is dose- and tissue-dependent and that a single ratio to discriminate the two sources cannot be used.
机译:当用维生素E补充羊肉饮食时,使用1.36的等效因子来区分RRR-α-生育酰基乙酸酯和全rac-α-生育酰基乙酸酯。然而,更新的研究表明需要对牲畜动物的新等同因素。目前的研究旨在确定RRR-和全rac-α-生育酰基乙酸酯补充对羊肉组织中α-生育酚沉积的影响。喂养108个RASA品种羔羊的含量越来越多的全rac-α-生育酰基乙酸酯(0.25,0.5,1.0和2.0g / kg复合进料)或丙酸rR-α-生育酰基(0.125,0.25,0.5和1.0通过将它们加入到含有0.025g / kg乙酸酯的基础饮食中,作为标准维生素和矿物混合物的一部分,将它们加入0.025g / kg乙酸酯的基础饮食。在屠宰25.8±1.67 kg bw之前,饮食在过去14天之前。在屠宰肌肉,心脏,肝脏,脑和脾脏的屠宰样品后20分钟内被冷冻在α-生育酚分析中。在研究的所有组织中,维生素E源的增加的补充导致α-生育酚浓度的显着增加(P <0.001)。具有最高α-生育酚浓度的组织是肝脏,然后是脾脏,心脏和肌肉。在类似的补充水平(0.25,0.50和1.0g / kg复合饲料)中,所选组织中的α-生育酚含量不受α-生育酚源的影响。然而,RRR-和全rac-α-生育磷酸酯之间的比率随着肌肉中的1.06-1.16的α-生育酚补充剂(0.25和1.0g / kg复合饲料)增加,1.07至1.15,0.91肝脏含量为0.94,脾脏0.98至1.10。在补充有全-RAC-α-生育基乙酸血液核算的羊羔患者最多35的羊羔肝脏中,发现了2s的相对比例最高(SSS,SSR-,SRS和SRR-α-生育酚)的相对比例。保留总α-生育酚的39%,而其他组织中的2S配置的立体异构体的比例占含量。还发现增加全rac-α-生育酰基乙酸酯补充剂,以影响肌肉,心脏和脾脏中的2R配置的立体异构体,随着RRS,RSR和RSS的成本而增加的RRS-α-生育酚的成本。在所有组织中,接受RRR-α-生育酰基乙酸酯的羊羔中所有非RRR立体异构体的相对比例低于RRR-α-生育酚。这些结果证实RRR-和全Rac-α-生育酰基乙酸酯的相对生物利用度是剂量和组织依赖性的,并且不能使用单一的比率来区分两个来源。

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