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Two alternative pathways for docosahexaenoic acid (DHA 22:6n-3) biosynthesis are widespread among teleost fish

机译:硬骨鱼中广泛存在二十二碳六烯酸(DHA22:6n-3)生物合成的两种替代途径

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摘要

Docosahexaenoic acid (DHA) plays important physiological roles in vertebrates. Studies in rats and rainbow trout confirmed that DHA biosynthesis proceeds through the so-called “Sprecher pathway”, a biosynthetic process requiring a Δ6 desaturation of 24:5n−3 to 24:6n−3. Alternatively, some teleosts possess fatty acyl desaturases 2 (Fads2) that enable them to biosynthesis DHA through a more direct route termed the “Δ4 pathway”. In order to elucidate the prevalence of both pathways among teleosts, we investigated the Δ6 ability towards C24 substrates of Fads2 from fish with different evolutionary and ecological backgrounds. Subsequently, we retrieved public databases to identify Fads2 containing the YXXN domain responsible for the Δ4 desaturase function, and consequently enabling these species to operate the Δ4 pathway. We demonstrated that, with the exception of Δ4 desaturases, fish Fads2 have the ability to operate as Δ6 desaturases towards C24 PUFA enabling them to synthesise DHA through the Sprecher pathway. Nevertheless, the Δ4 pathway represents an alternative route in some teleosts and we identified the presence of putative Δ4 Fads2 in a further 11 species and confirmed the function as Δ4 desaturases of Fads2 from medaka and Nile tilapia. Our results demonstrated that two alternative pathways for DHA biosynthesis exist in teleosts.
机译:二十二碳六烯酸(DHA)在脊椎动物中起着重要的生理作用。对大鼠和虹鳟鱼的研究证实,DHA生物合成通过所谓的“ Sprecher途径”进行,该生物合成过程需要Δ6脱饱和度为24:5n-3至24:6n-3。或者,一些硬骨鱼拥有脂肪酰基去饱和酶2(Fads2),使它们能够通过称为“Δ4途径”的更直接途径生物合成DHA。为了阐明硬骨鱼中这两种途径的普遍性,我们研究了具有不同进化和生态背景的鱼类对Fads2 C24底物的Δ6能力。随后,我们检索了公共数据库以鉴定包含负责Δ4去饱和酶功能的YXXN域的Fads2,从而使这些物种能够操作Δ4途径。我们证明,除Δ4脱氢酶外,鱼Fads2具有对C24 PUFA充当Δ6脱氢酶的能力,使它们能够通过Sprecher途径合成DHA。然而,Δ4途径代表了一些硬骨鱼的替代途径,我们在其他11个物种中鉴定出假定的Δ4Fads2的存在,并确认了其作为来自中部和尼罗罗非鱼的Fads2的Δ4去饱和酶的功能。我们的结果表明硬骨鱼中存在两种DHA生物合成的替代途径。

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