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Biotransformation of labdane and halimane diterpenoids by two filamentous fungi strains

Biotransformation of natural products by filamentous fungi is a powerful and effective approach to achieve derivatives with valuable new chemical and biological properties. Although diterpenoid substrates usually exhibit good susceptibility towards fungi enzymes, there have been no studies concernin...

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Autores principales: Monteiro, Afif F., Seidl, Cláudia, Severino, Vanessa G. P., Cardoso, Carmen Lúcia, Castro-Gamboa, Ian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society Publishing 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5717651/
https://www.ncbi.nlm.nih.gov/pubmed/29291077
http://dx.doi.org/10.1098/rsos.170854
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author Monteiro, Afif F.
Seidl, Cláudia
Severino, Vanessa G. P.
Cardoso, Carmen Lúcia
Castro-Gamboa, Ian
author_facet Monteiro, Afif F.
Seidl, Cláudia
Severino, Vanessa G. P.
Cardoso, Carmen Lúcia
Castro-Gamboa, Ian
author_sort Monteiro, Afif F.
collection PubMed
description Biotransformation of natural products by filamentous fungi is a powerful and effective approach to achieve derivatives with valuable new chemical and biological properties. Although diterpenoid substrates usually exhibit good susceptibility towards fungi enzymes, there have been no studies concerning the microbiological transformation of halimane-type diterpenoids up to now. In this work, we investigated the capability of Fusarium oxysporum (a fungus isolated from the rhizosphere of Senna spectabilis) and Myrothecium verrucaria (an endophyte) to transform halimane (1) and labdane (2) acids isolated from Hymenaea stigonocarpa (Fabaceae). Feeding experiments resulted in the production of six derivatives, including hydroxy, oxo, formyl and carboxy analogues. Incubation of 1 with F. oxysporum afforded 2-oxo-derivative (3), while bioconversion with M. verrucaria provided 18,19-dihydroxy (4), 18-formyl (5) and 18-carboxy (6) bioproducts. Transformation of substrate 2 mediated by F. oxysporum produced a 7α-hydroxy (7) derivative, while M. verrucaria yielded 7α- (7) and 3β-hydroxy (8) metabolites. Unlike F. oxysporum, which showed a preference to transform ring B, M. verrucaria exhibited the ability to hydroxylate both rings A and B from substrate 2. Additionally, compounds 1–8 were evaluated for inhibitory activity against Hr-AChE and Hu-BChE enzymes through ICER-IT-MS/MS assay.
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spelling pubmed-57176512017-12-29 Biotransformation of labdane and halimane diterpenoids by two filamentous fungi strains Monteiro, Afif F. Seidl, Cláudia Severino, Vanessa G. P. Cardoso, Carmen Lúcia Castro-Gamboa, Ian R Soc Open Sci Chemistry Biotransformation of natural products by filamentous fungi is a powerful and effective approach to achieve derivatives with valuable new chemical and biological properties. Although diterpenoid substrates usually exhibit good susceptibility towards fungi enzymes, there have been no studies concerning the microbiological transformation of halimane-type diterpenoids up to now. In this work, we investigated the capability of Fusarium oxysporum (a fungus isolated from the rhizosphere of Senna spectabilis) and Myrothecium verrucaria (an endophyte) to transform halimane (1) and labdane (2) acids isolated from Hymenaea stigonocarpa (Fabaceae). Feeding experiments resulted in the production of six derivatives, including hydroxy, oxo, formyl and carboxy analogues. Incubation of 1 with F. oxysporum afforded 2-oxo-derivative (3), while bioconversion with M. verrucaria provided 18,19-dihydroxy (4), 18-formyl (5) and 18-carboxy (6) bioproducts. Transformation of substrate 2 mediated by F. oxysporum produced a 7α-hydroxy (7) derivative, while M. verrucaria yielded 7α- (7) and 3β-hydroxy (8) metabolites. Unlike F. oxysporum, which showed a preference to transform ring B, M. verrucaria exhibited the ability to hydroxylate both rings A and B from substrate 2. Additionally, compounds 1–8 were evaluated for inhibitory activity against Hr-AChE and Hu-BChE enzymes through ICER-IT-MS/MS assay. The Royal Society Publishing 2017-11-08 /pmc/articles/PMC5717651/ /pubmed/29291077 http://dx.doi.org/10.1098/rsos.170854 Text en © 2017 The Authors. http://creativecommons.org/licenses/by/4.0/ Published by the Royal Society under the terms of the Creative Commons Attribution License http://creativecommons.org/licenses/by/4.0/, which permits unrestricted use, provided the original author and source are credited.
spellingShingle Chemistry
Monteiro, Afif F.
Seidl, Cláudia
Severino, Vanessa G. P.
Cardoso, Carmen Lúcia
Castro-Gamboa, Ian
Biotransformation of labdane and halimane diterpenoids by two filamentous fungi strains
title Biotransformation of labdane and halimane diterpenoids by two filamentous fungi strains
title_full Biotransformation of labdane and halimane diterpenoids by two filamentous fungi strains
title_fullStr Biotransformation of labdane and halimane diterpenoids by two filamentous fungi strains
title_full_unstemmed Biotransformation of labdane and halimane diterpenoids by two filamentous fungi strains
title_short Biotransformation of labdane and halimane diterpenoids by two filamentous fungi strains
title_sort biotransformation of labdane and halimane diterpenoids by two filamentous fungi strains
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5717651/
https://www.ncbi.nlm.nih.gov/pubmed/29291077
http://dx.doi.org/10.1098/rsos.170854
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