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Uncovering biosynthetic relationships between antifungal nonadrides and octadrides

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 oc...

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Autores principales: de Mattos-Shipley, Kate M. J., Spencer, Catherine E., Greco, Claudio, Heard, David M., O'Flynn, Daniel E., Dao, Trong T., Song, Zhongshu, Mulholland, Nicholas P., Vincent, Jason L., Simpson, Thomas J., Cox, Russell J., Bailey, Andrew M., Willis, Christine L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8162798/
https://www.ncbi.nlm.nih.gov/pubmed/34094403
http://dx.doi.org/10.1039/d0sc04309e
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author de Mattos-Shipley, Kate M. J.
Spencer, Catherine E.
Greco, Claudio
Heard, David M.
O'Flynn, Daniel E.
Dao, Trong T.
Song, Zhongshu
Mulholland, Nicholas P.
Vincent, Jason L.
Simpson, Thomas J.
Cox, Russell J.
Bailey, Andrew M.
Willis, Christine L.
author_facet de Mattos-Shipley, Kate M. J.
Spencer, Catherine E.
Greco, Claudio
Heard, David M.
O'Flynn, Daniel E.
Dao, Trong T.
Song, Zhongshu
Mulholland, Nicholas P.
Vincent, Jason L.
Simpson, Thomas J.
Cox, Russell J.
Bailey, Andrew M.
Willis, Christine L.
author_sort de Mattos-Shipley, Kate M. J.
collection PubMed
description 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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spelling pubmed-81627982021-06-04 Uncovering biosynthetic relationships between antifungal nonadrides and octadrides de Mattos-Shipley, Kate M. J. Spencer, Catherine E. Greco, Claudio Heard, David M. O'Flynn, Daniel E. Dao, Trong T. Song, Zhongshu Mulholland, Nicholas P. Vincent, Jason L. Simpson, Thomas J. Cox, Russell J. Bailey, Andrew M. Willis, Christine L. Chem Sci Chemistry 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. The Royal Society of Chemistry 2020-10-07 /pmc/articles/PMC8162798/ /pubmed/34094403 http://dx.doi.org/10.1039/d0sc04309e Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
de Mattos-Shipley, Kate M. J.
Spencer, Catherine E.
Greco, Claudio
Heard, David M.
O'Flynn, Daniel E.
Dao, Trong T.
Song, Zhongshu
Mulholland, Nicholas P.
Vincent, Jason L.
Simpson, Thomas J.
Cox, Russell J.
Bailey, Andrew M.
Willis, Christine L.
Uncovering biosynthetic relationships between antifungal nonadrides and octadrides
title Uncovering biosynthetic relationships between antifungal nonadrides and octadrides
title_full Uncovering biosynthetic relationships between antifungal nonadrides and octadrides
title_fullStr Uncovering biosynthetic relationships between antifungal nonadrides and octadrides
title_full_unstemmed Uncovering biosynthetic relationships between antifungal nonadrides and octadrides
title_short Uncovering biosynthetic relationships between antifungal nonadrides and octadrides
title_sort uncovering biosynthetic relationships between antifungal nonadrides and octadrides
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8162798/
https://www.ncbi.nlm.nih.gov/pubmed/34094403
http://dx.doi.org/10.1039/d0sc04309e
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