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大西洋鲑鱼中长链多不饱和脂肪酸生物合成的分子调控。

Molecular Regulation of Biosynthesis of Long Chain Polyunsaturated Fatty Acids in Atlantic Salmon.

机构信息

Center for Integrative Genetics (CIGENE), Department of Animal and Aquacultural Sciences, Faculty of Biosciences, Norwegian University of Life Sciences, Ås, Norway.

Institute of Biology, Norwegian University of Science and Technology, 7491, Trondheim, Norway.

出版信息

Mar Biotechnol (NY). 2022 Aug;24(4):661-670. doi: 10.1007/s10126-022-10144-w. Epub 2022 Jul 30.

Abstract

Salmon is a rich source of health-promoting omega-3 long chain polyunsaturated fatty acids (n-3 LC-PUFA), such as eicosapentaenoic acid (EPA, 20:5n-3) and docosahexaenoic acid (DHA, 22:6n-3). The LC-PUFA biosynthetic pathway in Atlantic salmon is one of the most studied compared to other teleosts. This has largely been due to the massive replacement of LC-PUFA-rich ingredients in aquafeeds with terrestrial plant oils devoid of these essential fatty acids (EFA) which ultimately pushed dietary content towards the minimal requirement of EFA. The practice would also reduce tissue content of n-3 LC-PUFA compromising the nutritional value of salmon to the human consumer. These necessitated detailed studies of endogenous biosynthetic capability as a contributor to these EFA. This review seeks to provide a comprehensive and concise overview of the current knowledge about the molecular genetics of PUFA biosynthesis in Atlantic salmon, highlighting the enzymology and nutritional regulation as well as transcriptional control networks. Furthermore, we discuss the impact of genome duplication on the complexity of salmon LC-PUFA pathway and highlight probable implications on endogenous biosynthetic capabilities. Finally, we have also compiled and made available a large RNAseq dataset from 316 salmon liver samples together with an R-script visualization resource to aid in explorative and hypothesis-driven research into salmon lipid metabolism.

摘要

三文鱼是一种富含促进健康的欧米伽-3 长链多不饱和脂肪酸(n-3 LC-PUFA)的食物,如二十碳五烯酸(EPA,20:5n-3)和二十二碳六烯酸(DHA,22:6n-3)。与其他硬骨鱼相比,大西洋三文鱼的 LC-PUFA 生物合成途径是研究最多的途径之一。这在很大程度上是由于水产饲料中富含 LC-PUFA 的成分被陆地植物油大量取代,而这些植物油中缺乏这些必需脂肪酸(EFA),最终导致饮食中 EFA 的含量接近最低要求。这种做法还会降低组织中 n-3 LC-PUFA 的含量,从而降低三文鱼对人类消费者的营养价值。这些因素促使人们详细研究内源性生物合成能力,以了解这些 EFA 的来源。本综述旨在提供一个关于大西洋三文鱼 PUFA 生物合成分子遗传学的全面而简洁的概述,重点介绍酶学和营养调节以及转录控制网络。此外,我们还讨论了基因组加倍对三文鱼 LC-PUFA 途径复杂性的影响,并强调了其对内源性生物合成能力的可能影响。最后,我们还收集并提供了一个包含 316 个三文鱼肝脏样本的大型 RNAseq 数据集,并提供了一个 R 脚本可视化资源,以帮助对三文鱼脂质代谢进行探索性和基于假设的研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b6fc/9385821/b7e3c0045d38/10126_2022_10144_Fig1_HTML.jpg

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