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Biochemical characterization of the minimal domains of an iterative eukaryotic polyketide synthase

Iterative type I polyketide synthases (PKS) are megaenzymes essential to the biosynthesis of an enormously diverse array of bioactive natural products. Each PKS contains minimally three functional domains, β‐ketosynthase (KS), acyltransferase (AT), and acyl carrier protein (ACP), and a subset of red...

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Autores principales: Sabatini, Martin, Comba, Santiago, Altabe, Silvia, Recio‐Balsells, Alejandro I., Labadie, Guillermo R., Takano, Eriko, Gramajo, Hugo, Arabolaza, Ana
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6334511/
https://www.ncbi.nlm.nih.gov/pubmed/30300504
http://dx.doi.org/10.1111/febs.14675
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author Sabatini, Martin
Comba, Santiago
Altabe, Silvia
Recio‐Balsells, Alejandro I.
Labadie, Guillermo R.
Takano, Eriko
Gramajo, Hugo
Arabolaza, Ana
author_facet Sabatini, Martin
Comba, Santiago
Altabe, Silvia
Recio‐Balsells, Alejandro I.
Labadie, Guillermo R.
Takano, Eriko
Gramajo, Hugo
Arabolaza, Ana
author_sort Sabatini, Martin
collection PubMed
description Iterative type I polyketide synthases (PKS) are megaenzymes essential to the biosynthesis of an enormously diverse array of bioactive natural products. Each PKS contains minimally three functional domains, β‐ketosynthase (KS), acyltransferase (AT), and acyl carrier protein (ACP), and a subset of reducing domains such as ketoreductase (KR), dehydratase (DH), and enoylreductase (ER). The substrate selection, condensation reactions, and β‐keto processing of the polyketide growing chain are highly controlled in a programmed manner. However, the structural features and mechanistic rules that orchestrate the iterative cycles, processing domains functionality, and chain termination in this kind of megaenzymes are often poorly understood. Here, we present a biochemical and functional characterization of the KS and the AT domains of a PKS from the mallard duck Anas platyrhynchos (ApPKS). ApPKS belongs to an animal PKS family phylogenetically more related to bacterial PKS than to metazoan fatty acid synthases. Through the dissection of the ApPKS enzyme into mono‐ to didomain fragments and its reconstitution in vitro, we determined its substrate specificity toward different starters and extender units. ApPKS AT domain can effectively transfer acetyl‐CoA and malonyl‐CoA to the ApPKS ACP stand‐alone domain. Furthermore, the KS and KR domains, in the presence of Escherichia coli ACP, acetyl‐CoA, and malonyl‐CoA, showed the ability to catalyze the chain elongation and the β‐keto reduction steps necessary to yield a 3‐hydroxybutyryl‐ACP derivate. These results provide new insights into the catalytic efficiency and specificity of this uncharacterized family of PKSs.
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spelling pubmed-63345112019-01-23 Biochemical characterization of the minimal domains of an iterative eukaryotic polyketide synthase Sabatini, Martin Comba, Santiago Altabe, Silvia Recio‐Balsells, Alejandro I. Labadie, Guillermo R. Takano, Eriko Gramajo, Hugo Arabolaza, Ana FEBS J Original Articles Iterative type I polyketide synthases (PKS) are megaenzymes essential to the biosynthesis of an enormously diverse array of bioactive natural products. Each PKS contains minimally three functional domains, β‐ketosynthase (KS), acyltransferase (AT), and acyl carrier protein (ACP), and a subset of reducing domains such as ketoreductase (KR), dehydratase (DH), and enoylreductase (ER). The substrate selection, condensation reactions, and β‐keto processing of the polyketide growing chain are highly controlled in a programmed manner. However, the structural features and mechanistic rules that orchestrate the iterative cycles, processing domains functionality, and chain termination in this kind of megaenzymes are often poorly understood. Here, we present a biochemical and functional characterization of the KS and the AT domains of a PKS from the mallard duck Anas platyrhynchos (ApPKS). ApPKS belongs to an animal PKS family phylogenetically more related to bacterial PKS than to metazoan fatty acid synthases. Through the dissection of the ApPKS enzyme into mono‐ to didomain fragments and its reconstitution in vitro, we determined its substrate specificity toward different starters and extender units. ApPKS AT domain can effectively transfer acetyl‐CoA and malonyl‐CoA to the ApPKS ACP stand‐alone domain. Furthermore, the KS and KR domains, in the presence of Escherichia coli ACP, acetyl‐CoA, and malonyl‐CoA, showed the ability to catalyze the chain elongation and the β‐keto reduction steps necessary to yield a 3‐hydroxybutyryl‐ACP derivate. These results provide new insights into the catalytic efficiency and specificity of this uncharacterized family of PKSs. John Wiley and Sons Inc. 2018-10-25 2018-12 /pmc/articles/PMC6334511/ /pubmed/30300504 http://dx.doi.org/10.1111/febs.14675 Text en © 2018 The Authors. The FEBS Journal published by John Wiley & Sons Ltd on behalf of Federation of European Biochemical Societies. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Sabatini, Martin
Comba, Santiago
Altabe, Silvia
Recio‐Balsells, Alejandro I.
Labadie, Guillermo R.
Takano, Eriko
Gramajo, Hugo
Arabolaza, Ana
Biochemical characterization of the minimal domains of an iterative eukaryotic polyketide synthase
title Biochemical characterization of the minimal domains of an iterative eukaryotic polyketide synthase
title_full Biochemical characterization of the minimal domains of an iterative eukaryotic polyketide synthase
title_fullStr Biochemical characterization of the minimal domains of an iterative eukaryotic polyketide synthase
title_full_unstemmed Biochemical characterization of the minimal domains of an iterative eukaryotic polyketide synthase
title_short Biochemical characterization of the minimal domains of an iterative eukaryotic polyketide synthase
title_sort biochemical characterization of the minimal domains of an iterative eukaryotic polyketide synthase
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6334511/
https://www.ncbi.nlm.nih.gov/pubmed/30300504
http://dx.doi.org/10.1111/febs.14675
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