Functional Diversity in Fungal Fatty Acid Synthesis

Acetylenic specialized metabolites containing one or more carbon-carbon triple bonds are widespread, being found in fungi, vascular and lower plants, marine sponges and algae, and insects. Plants, moss, and most recently, insects, have been shown to employ an energetically difficult, sequential dehy...

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Veröffentlicht in:The Journal of biological chemistry 2010-09, Vol.285 (37), p.28442-28449
Hauptverfasser: Blacklock, Brenda J., Scheffler, Brian E., Shepard, Michael R., Jayasuriya, Naomi, Minto, Robert E.
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Sprache:eng
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Zusammenfassung:Acetylenic specialized metabolites containing one or more carbon-carbon triple bonds are widespread, being found in fungi, vascular and lower plants, marine sponges and algae, and insects. Plants, moss, and most recently, insects, have been shown to employ an energetically difficult, sequential dehydrogenation mechanism for acetylenic bond formation. Here, we describe the cloning and heterologous expression in yeast of a linoleoyl 12-desaturase (acetylenase) and a bifunctional desaturase with Δ12-/Δ14-regiospecificity from the Pacific golden chanterelle. The acetylenase gene, which is the first identified from a fungus, is phylogenetically distinct from known plant and fungal desaturases. Together, the bifunctional desaturase and the acetylenase provide the enzymatic activities required to drive oleate through linoleate to crepenynate and the conjugated enyne (14Z)-dehydrocrepenynate, the branchpoint precursors to a major class of acetylenic natural products.
ISSN:0021-9258
1083-351X
DOI:10.1074/jbc.M110.151498