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Fungal biocatalysts for labdane diterpene hydroxylation.
Cruz de Carvalho, Tatiane; de Oliveira Silva, Eliane; Soares, Gilberto Augusto; Parreira, Renato Luis Tame; Ambrósio, Sérgio Ricardo; Jacometti Cardoso Furtado, Niege Araçari.
Afiliação
  • Cruz de Carvalho T; Department of Pharmaceutical Sciences, School of Pharmaceutical Sciences of Ribeirão Preto, University of São Paulo, Av. do Café, s/n, Ribeirão Prêto, SP, 14040-903, Brazil.
  • de Oliveira Silva E; Department of Pharmaceutical Sciences, School of Pharmaceutical Sciences of Ribeirão Preto, University of São Paulo, Av. do Café, s/n, Ribeirão Prêto, SP, 14040-903, Brazil.
  • Soares GA; Organic Chemistry Department, Chemistry Institute, Federal University of Bahia, Rua Barão de Jeremoabo, s/n, Salvador, BA, 40110-060, Brazil.
  • Parreira RLT; Nucleus of Research in Sciences and Technology, University of Franca, Franca, SP, Brazil.
  • Ambrósio SR; Nucleus of Research in Sciences and Technology, University of Franca, Franca, SP, Brazil.
  • Jacometti Cardoso Furtado NA; Nucleus of Research in Sciences and Technology, University of Franca, Franca, SP, Brazil.
Bioprocess Biosyst Eng ; 43(6): 1051-1059, 2020 Jun.
Article em En | MEDLINE | ID: mdl-32020446
ABSTRACT
Labdane diterpenes and their derivatives have shown remarkable biological activities and are useful as chiral building blocks for the synthesis of a variety of bioactive compounds. There is great interest in developing biocatalyst technology to achieve regio- and stereoselective hydroxylation of unactivated C-H bonds in complex natural products, since the functionalization of unactivated C-H bonds generally requires hard reaction conditions and highly reactive oxidizing agents, which are limited regarding the control of regio- and stereoselectivity. Filamentous fungi are efficient biocatalysts capable of catalyzing a wide variety of hydroxylation reactions, and the use of whole cell biocatalysts provides advantages regarding cofactor regeneration and is much less expensive. Therefore, the goal of this study was to select biocatalysts to develop biotransformation processes that can be scalable under mild reaction conditions for hydroxylation of a labdane diterpene, 3ß-acetoxy-copalic acid, which contains the trans-decalin moiety and a side chain dienic system appropriate for the preparation of a variety of compounds. Biotransformation processes were carried out and five filamentous fungi were selected as capable of producing hydroxylated diterpenes at positions C-3, C-6, C-7 and C-18 of the trans-decalin moiety and C-13 of the side chain dienic system. Hydroxylation reactions occurred with regio- and stereoselectivity by using some fungi that produced only the 6α, 7α and 13α-hydroxyl derivatives. The chemical structures of the hydroxylated diterpenes were determined from spectrometric and spectroscopic data, and the relative stereochemistry of stereogenic centers was established from coupling constants, by NOE-diff experiments and/or by computational calculations.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Diterpenos / Biocatálise / Fungos Idioma: En Ano de publicação: 2020 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Diterpenos / Biocatálise / Fungos Idioma: En Ano de publicação: 2020 Tipo de documento: Article