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Double Transgenesis of Humanized fat1 and fat2 Genes Promotes Omega-3 Polyunsaturated Fatty Acids Synthesis in a Zebrafish Model

机译:人性化的fat1和fat2基因的双重转基因促进了斑马鱼模型中Omega-3多不饱和脂肪酸的合成。

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Omega-3 long-chain polyunsaturated fatty acid (n-3 LC-PUFA), especially eicosapentaenoic acid (EPA) and docosahexaenoic acid (DHA), are essential nutrients for human health. However, vertebrates, including humans, have lost the abilities to synthesize EPA and DHA de novo, majorly due to the genetic absence of delta-12 desaturase and omega-3 desaturase genes. Fishes, especially those naturally growing marine fish, are major dietary source of EPA and DHA. Because of the severe decline of marine fishery and the decrease in n-3 LC-PUFA content of farmed fishes, it is highly necessary to develop alternative sources of n-3 LC-PUFA. In the present study, we utilized transgenic technology to generate n-3 LC-PUFA-rich fish by using zebrafish as an animal model. Firstly, fat1 was proved to function efficiently in fish culture cells, which showed an effective conversion of n-6 PUFA to n-3 PUFA with the n-6-3 ratio that decreased from 7.7 to 1.1. Secondly, expression of fat1 in transgenic zebrafish increased the 20:5n-3 and 22:6n-3 contents to 1.8- and 2.4-fold, respectively. Third, co-expression of fat2, a fish codon-optimized delta-12 desaturase gene, and fat1 in fish culture cell significantly promoted n-3 PUFA synthesis with the decreased n-6-3 ratio from 7.7 to 0.7. Finally, co-expression of fat1 and fat2 in double transgenic zebrafish increased the 20:5n-3 and 22:6n-3 contents to 1.7- and 2.8-fold, respectively. Overall, we generated two types of transgenic zebrafish rich in endogenous n-3 LC-PUFA, fat1 transgenic zebrafish and fat1/fat2 double transgenic zebrafish. Our results demonstrate that application of transgenic technology of humanized fat1 and fat2 in farmed fishes can largely improve the n-3 LC-PUFA production.
机译:Omega-3长链多不饱和脂肪酸(n-3 LC-PUFA),尤其是二十碳五烯酸(EPA)和二十二碳六烯酸(DHA),是人体健康的重要营养素。但是,包括人类在内的脊椎动物已经丧失了从头合成EPA和DHA的能力,这主要是由于缺少delta-12去饱和酶和omega-3去饱和酶基因的缘故。鱼类,尤其是那些自然生长的海水鱼类,是EPA和DHA的主要饮食来源。由于海洋渔业的严重减少和养殖鱼类n-3 LC-PUFA含量的下降,迫切需要开发n-3 LC-PUFA的替代来源。在本研究中,我们利用转基因技术通过使用斑马鱼作为动物模型来生成富含n-3 LC-PUFA的鱼。首先,证明了fat1在鱼类培养细胞中有效发挥作用,显示出n-6 PUFA到n-3 PUFA的有效转化,n-6 / n-3的比例从7.7降至1.1。其次,在转基因斑马鱼中fat1的表达将20:5n-3和22:6n-3的含量分别提高到1.8倍和2.4倍。第三,在鱼类培养细胞中共同表达fat2(一种鱼密码子最优化的delta-12去饱和酶基因)和fat1可以显着促进n-3 PUFA的合成,n-6 / n-3的比例从7.7降低到0.7。最后,双转基因斑马鱼中fat1和fat2的共表达使20:5n-3和22:6n-3的含量分别增加到1.7和2.8倍。总体而言,我们生成了两种富含内源性n-3 LC-PUFA的转基因斑马鱼,即fat1转基因斑马鱼和fat1 / fat2双转基因斑马鱼。我们的结果表明,在养殖鱼类中应用人源化的fat1和fat2转基因技术可以大大提高n-3 LC-PUFA的产量。

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