Journal of Lipid Research
Volume 57, Issue 10, October 2016, Pages 1854-1864
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Research Articles
Biosynthetic mechanism of very long chain polyunsaturated fatty acids in Thraustochytrium sp. 26185[S]

https://doi.org/10.1194/jlr.M070136Get rights and content
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Thraustochytrium, a unicellular marine protist, has been used as a commercial source of very long chain PUFAs (VLCPUFAs) such as DHA (22:6n-3). Our recent work indicates coexistence of a Δ4-desaturation-dependent pathway (aerobic) and a polyketide synthase-like PUFA synthase pathway (anaerobic) to synthesize the fatty acids in Thraustochytrium sp. 26185. Heterologous expression of the Thraustochytrium PUFA synthase along with a phosphopantetheinyl transferase in Escherichia coli showed the anaerobic pathway was highly active in the biosynthesis of VLCPUFAs. The amount of Δ4 desaturated VLCPUFAs produced reached about 18% of the total fatty acids in the transformant cells at day 6 in a time course of the induced expression. In Thraustochytrium, the expression level of the PUFA synthase gene was much higher than that of the Δ4 desaturase gene, and also highly correlated with the production of VLCPUFAs. On the other hand, Δ9 and Δ12 desaturations in the aerobic pathway were either ineffective or absent in the species, as evidenced by the genomic survey, heterologous expression of candidate genes, and in vivo feeding experiments. These results indicate that the anaerobic pathway is solely responsible for the biosynthesis for VLCPUFAs in Thraustochytrium.

polyunsaturated fatty acid synthase
docosahexaenoic acid
docosapentaenoic acid
ω3-fatty acid
ω6-fatty acid
fatty acid biosynthesis

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This work was supported by the Canadian Network for Research and Innovation in Machining Technology, Natural Sciences and Engineering Research Council of Canada.

    Abbreviations:

    ACP

    acyl carrier protein

    ALA

    α-linolenic acid

    ARA

    arachidonic acid

    DH

    dehydratase

    DPA

    docosapentaenoic acid

    ER

    enoyl-ACP reductase

    FAME

    fatty acid methyl ester

    GLA

    γ-linolenic acid

    KS

    ketoacyl-ACP synthase

    LA

    linoleic acid

    ORF

    open reading frame

    PKS

    polyketide synthase

    PPTase

    phosphopantetheinyl transferase

    SA

    stearic acid

    VLCPUFA

    very long chain PUFA

[S]

The online version of this article (available at http://www.jlr.org) contains a supplement.