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An intramodular thioesterase domain catalyses chain release in the biosynthesis of a cytotoxic virulence factor

An essential step in the biosynthesis of polyketide and non-ribosomal peptide natural products is cleavage of the thioester bond that tethers the acyl/peptidyl chain to its biosynthetic enzyme. In modular polyketide synthases (PKS) and non-ribosomal peptide synthetases (NRPS) chain release is typica...

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Autores principales: Little, Rory, Trottmann, Felix, Preissler, Miriam, Hertweck, Christian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9428774/
https://www.ncbi.nlm.nih.gov/pubmed/36128506
http://dx.doi.org/10.1039/d2cb00121g
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author Little, Rory
Trottmann, Felix
Preissler, Miriam
Hertweck, Christian
author_facet Little, Rory
Trottmann, Felix
Preissler, Miriam
Hertweck, Christian
author_sort Little, Rory
collection PubMed
description An essential step in the biosynthesis of polyketide and non-ribosomal peptide natural products is cleavage of the thioester bond that tethers the acyl/peptidyl chain to its biosynthetic enzyme. In modular polyketide synthases (PKS) and non-ribosomal peptide synthetases (NRPS) chain release is typically catalysed by a single C-terminal thioesterase domain. A clear exception is the bimodular PKS-NRPS BurA that produces gonyol—an intermediate in the biosynthesis of the cytotoxic Burkholderia virulence factor malleicyprol. While BurA lacks a C-terminal thioesterase domain, making the mechanism by which gonyol is released unclear, it contains two uncommon non-C-terminal thioesterase domains: one at the N-terminus of module one (BurA TE-A) and one within module two (BurA TE-B). Here we show using a sequence similarity network and site-directed mutagenesis that BurA TE-A resembles proofreading type II thioesterases and is not essential for gonyol biosynthesis, indicating a hydrolytic proofreading role. In contrast, the intramodular BurA TE-B is essential and catalyses the hydrolytic release of gonyol. Furthermore, unlike typical type I thioesterase domains, BurA TE-B accepts its acyl substrate from a downstream carrier-protein domain as opposed to an upstream one. Our findings clarify an important step in malleicyprol biosynthesis, reveal the flexibility of thioesterase domain positioning, and will serve as a basis for understanding other intramodular thioesterase domains.
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spelling pubmed-94287742022-09-19 An intramodular thioesterase domain catalyses chain release in the biosynthesis of a cytotoxic virulence factor Little, Rory Trottmann, Felix Preissler, Miriam Hertweck, Christian RSC Chem Biol Chemistry An essential step in the biosynthesis of polyketide and non-ribosomal peptide natural products is cleavage of the thioester bond that tethers the acyl/peptidyl chain to its biosynthetic enzyme. In modular polyketide synthases (PKS) and non-ribosomal peptide synthetases (NRPS) chain release is typically catalysed by a single C-terminal thioesterase domain. A clear exception is the bimodular PKS-NRPS BurA that produces gonyol—an intermediate in the biosynthesis of the cytotoxic Burkholderia virulence factor malleicyprol. While BurA lacks a C-terminal thioesterase domain, making the mechanism by which gonyol is released unclear, it contains two uncommon non-C-terminal thioesterase domains: one at the N-terminus of module one (BurA TE-A) and one within module two (BurA TE-B). Here we show using a sequence similarity network and site-directed mutagenesis that BurA TE-A resembles proofreading type II thioesterases and is not essential for gonyol biosynthesis, indicating a hydrolytic proofreading role. In contrast, the intramodular BurA TE-B is essential and catalyses the hydrolytic release of gonyol. Furthermore, unlike typical type I thioesterase domains, BurA TE-B accepts its acyl substrate from a downstream carrier-protein domain as opposed to an upstream one. Our findings clarify an important step in malleicyprol biosynthesis, reveal the flexibility of thioesterase domain positioning, and will serve as a basis for understanding other intramodular thioesterase domains. RSC 2022-07-25 /pmc/articles/PMC9428774/ /pubmed/36128506 http://dx.doi.org/10.1039/d2cb00121g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Little, Rory
Trottmann, Felix
Preissler, Miriam
Hertweck, Christian
An intramodular thioesterase domain catalyses chain release in the biosynthesis of a cytotoxic virulence factor
title An intramodular thioesterase domain catalyses chain release in the biosynthesis of a cytotoxic virulence factor
title_full An intramodular thioesterase domain catalyses chain release in the biosynthesis of a cytotoxic virulence factor
title_fullStr An intramodular thioesterase domain catalyses chain release in the biosynthesis of a cytotoxic virulence factor
title_full_unstemmed An intramodular thioesterase domain catalyses chain release in the biosynthesis of a cytotoxic virulence factor
title_short An intramodular thioesterase domain catalyses chain release in the biosynthesis of a cytotoxic virulence factor
title_sort intramodular thioesterase domain catalyses chain release in the biosynthesis of a cytotoxic virulence factor
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9428774/
https://www.ncbi.nlm.nih.gov/pubmed/36128506
http://dx.doi.org/10.1039/d2cb00121g
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