Uncovering biosynthetic relationships between antifungal nonadrides and octadrides
- Chem Sci. 2020 Oct 7;11(42):11570-11578. doi: 10.1039/d0sc04309e.
- 1. School of Chemistry, University of Bristol Cantock's Close Bristol BS8 1TS UK [email protected] [email protected] [email protected].
- 2. School of Biological Sciences, University of Bristol 24 Tyndall Avenue Bristol BS8 1TQ UK.
- 3. Syngenta, Jealott's Hill International Research Centre Bracknell RG42 6EY UK.
- 4. Institute for Organic Chemistry and BMWZ, Leibniz University of Hannover Schneiderberg 38 30167 Hannover Germany.
Maleidrides are a class of bioactive secondary metabolites unique to filamentous fungi, which contain one or more maleic anhydrides fused to a 7-, 8- or 9- membered carbocycle (named heptadrides, octadrides and nonadrides respectively). Herein structural and biosynthetic studies on the Antifungal octadride, zopfiellin, and nonadrides scytalidin, deoxyscytalidin and castaneiolide are described. A combination of genome Sequencing, bioinformatic analyses, gene disruptions, biotransformations, isotopic feeding studies, NMR and X-ray crystallography revealed that they share a common biosynthetic pathway, diverging only after the nonadride deoxyscytalidin. 5-Hydroxylation of deoxyscytalidin occurs prior to ring contraction in the zopfiellin pathway of Diffractella curvata. In Scytalidium album, 6-hydroxylation - confirmed as being catalysed by the α-ketoglutarate dependent oxidoreductase ScyL2 - converts deoxyscytalidin to scytalidin, in the final step in the scytalidin pathway. Feeding scytalidin to a zopfiellin PKS knockout strain led to the production of the nonadride castaneiolide and two novel ring-open maleidrides.
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Cat. No.Product NameDescriptionTargetResearch Area
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Research Areas: Infection