Abstract
Abstract
Thraustochytrids are oleaginous marine eukaryotic microbes currently used to produce the essential omega-3 fatty acid docosahexaenoic acid (DHA, C22:6 n-3). To improve the production of this essential fatty acid by strain engineering, it is important to deeply understand how thraustochytrids synthesize fatty acids. While DHA is synthesized by a dedicated enzyme complex, other fatty acids are probably synthesized by the fatty acid synthase, followed by desaturases and elongases. Which unsaturated fatty acids are produced differs between different thraustochytrid genera and species; for example, Aurantiochytrium sp. T66, but not Aurantiochytrium limacinum SR21, synthesizes palmitoleic acid (C16:1 n-7) and vaccenic acid (C18:1 n-7). How strain T66 can produce these fatty acids has not been known, because BLAST analyses suggest that strain T66 does not encode any Δ9-desaturase-like enzyme. However, it does encode one Δ12-desaturase-like enzyme. In this study, the latter enzyme was expressed in A. limacinum SR21, and both C16:1 n-7 and C18:1 n-7 could be detected in the transgenic cells. Our results show that this desaturase, annotated T66Des9, is a Δ9-desaturase accepting C16:0 as a substrate. Phylogenetic studies indicate that the corresponding gene probably has evolved from a Δ12-desaturase-encoding gene. This possibility has not been reported earlier and is important to consider when one tries to deduce the potential a given organism has for producing unsaturated fatty acids based on its genome sequence alone.
Key points
• In thraustochytrids, automatic gene annotation does not always explain the fatty acids produced.
• T66Des9 is shown to synthesize palmitoleic acid (C16:1 n-7).
• T66des9 has probably evolved from Δ12-desaturase-encoding genes.
Publisher
Springer Science and Business Media LLC
Subject
Applied Microbiology and Biotechnology,General Medicine,Biotechnology
Reference50 articles.
1. Aasen IM, Ertesvåg H, Heggeset TM, Liu B, Brautaset T, Vadstein O, Ellingsen TE (2016) Thraustochytrids as production organisms for docosahexaenoic acid (DHA), squalene, and carotenoids. Appl Microbiol Biotechnol 100:4309–4321. https://doi.org/10.1007/s00253-016-7498-4
2. AOCS (2017a) Fatty acid composition by GLC: marine oils. Official method Ce 1b-89. In: Official methods and recommended practices of the AOCS 7th ed. American Oil Chemists Society, Champaign, IL, pp 1b–89
3. AOCS (2017b) Preparation of methyl esters of long-chain fatty acids. Official method Ch 1-91. In: Official methods and recommended practices of the AOCS, 7th edn. American Oil Chemists Society, Champaign, IL, pp 1–91
4. Bai Y, McCoy JG, Levin EJ, Sobrado P, Rajashankar KR, Fox BG, Zhou M (2015) X-ray structure of a mammalian stearoyl-CoA desaturase. Nature 524:252–256. https://doi.org/10.1038/nature14549
5. Barclay W, Weaver C, Metz J, Hansen J (2010) Development of a docosahexaenoic acid production technology using Schizochytrium: historical perspective and update. In: Cohen Z, Ratledge C (eds) Single cell oils, microbial and algal oils, 2nd edn. AOCS Press, Urbana, IL, pp 75–96
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