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An unusual Burkholderia gladioli double chain-initiating nonribosomal peptide synthetase assembles ‘fungal’ icosalide antibiotics

Burkholderia is a multi-talented genus of Gram-negative bacteria, which in recent years has become increasingly recognised as a promising source of bioactive natural products. Metabolite profiling of Burkholderia gladioli BCC0238 showed that it produces the asymmetric lipopeptidiolide antibiotic ico...

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Autores principales: Jenner, Matthew, Jian, Xinyun, Dashti, Yousef, Masschelein, Joleen, Hobson, Christian, Roberts, Douglas M., Jones, Cerith, Harris, Simon, Parkhill, Julian, Raja, Huzefa A., Oberlies, Nicholas H., Pearce, Cedric J., Mahenthiralingam, Eshwar, Challis, Gregory L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6553374/
https://www.ncbi.nlm.nih.gov/pubmed/31293732
http://dx.doi.org/10.1039/c8sc04897e
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author Jenner, Matthew
Jian, Xinyun
Dashti, Yousef
Masschelein, Joleen
Hobson, Christian
Roberts, Douglas M.
Jones, Cerith
Harris, Simon
Parkhill, Julian
Raja, Huzefa A.
Oberlies, Nicholas H.
Pearce, Cedric J.
Mahenthiralingam, Eshwar
Challis, Gregory L.
author_facet Jenner, Matthew
Jian, Xinyun
Dashti, Yousef
Masschelein, Joleen
Hobson, Christian
Roberts, Douglas M.
Jones, Cerith
Harris, Simon
Parkhill, Julian
Raja, Huzefa A.
Oberlies, Nicholas H.
Pearce, Cedric J.
Mahenthiralingam, Eshwar
Challis, Gregory L.
author_sort Jenner, Matthew
collection PubMed
description Burkholderia is a multi-talented genus of Gram-negative bacteria, which in recent years has become increasingly recognised as a promising source of bioactive natural products. Metabolite profiling of Burkholderia gladioli BCC0238 showed that it produces the asymmetric lipopeptidiolide antibiotic icosalide A1, originally isolated from a fungus. Comparative bioinformatics analysis of several genome-sequenced B. gladioli isolates identified a gene encoding a nonribosomal peptide synthase (NRPS) with an unusual architecture that was predicted to be responsible for icosalide biosynthesis. Inactivation of this gene in B. gladioli BCC0238 abolished icosalide production. PCR analysis and sequencing of total DNA from the original fungal icosalide A1 producer revealed it has a B. gladioli strain associated with it that harbours an NRPS with an identical architecture to that responsible for icosalide A1 assembly in B. gladioli BCC0238. Sequence analysis of the icosalide NRPS indicated that it contains two chain-initiating condensation (C(I)) domains. One of these is appended to the N-terminus of module 1 – a common architecture for NRPSs involved in lipopeptide assembly. The other is embedded in module 3, immediately downstream of a putative chain-elongating condensation domain. Analysis of the reactions catalysed by a tridomain construct from module 3 of the NRPS using intact protein mass spectrometry showed that the embedded C(I) domain initiates assembly of a second lipopeptide chain, providing key insights into the mechanism for asymmetric diolide assembly.
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spelling pubmed-65533742019-07-10 An unusual Burkholderia gladioli double chain-initiating nonribosomal peptide synthetase assembles ‘fungal’ icosalide antibiotics Jenner, Matthew Jian, Xinyun Dashti, Yousef Masschelein, Joleen Hobson, Christian Roberts, Douglas M. Jones, Cerith Harris, Simon Parkhill, Julian Raja, Huzefa A. Oberlies, Nicholas H. Pearce, Cedric J. Mahenthiralingam, Eshwar Challis, Gregory L. Chem Sci Chemistry Burkholderia is a multi-talented genus of Gram-negative bacteria, which in recent years has become increasingly recognised as a promising source of bioactive natural products. Metabolite profiling of Burkholderia gladioli BCC0238 showed that it produces the asymmetric lipopeptidiolide antibiotic icosalide A1, originally isolated from a fungus. Comparative bioinformatics analysis of several genome-sequenced B. gladioli isolates identified a gene encoding a nonribosomal peptide synthase (NRPS) with an unusual architecture that was predicted to be responsible for icosalide biosynthesis. Inactivation of this gene in B. gladioli BCC0238 abolished icosalide production. PCR analysis and sequencing of total DNA from the original fungal icosalide A1 producer revealed it has a B. gladioli strain associated with it that harbours an NRPS with an identical architecture to that responsible for icosalide A1 assembly in B. gladioli BCC0238. Sequence analysis of the icosalide NRPS indicated that it contains two chain-initiating condensation (C(I)) domains. One of these is appended to the N-terminus of module 1 – a common architecture for NRPSs involved in lipopeptide assembly. The other is embedded in module 3, immediately downstream of a putative chain-elongating condensation domain. Analysis of the reactions catalysed by a tridomain construct from module 3 of the NRPS using intact protein mass spectrometry showed that the embedded C(I) domain initiates assembly of a second lipopeptide chain, providing key insights into the mechanism for asymmetric diolide assembly. Royal Society of Chemistry 2019-04-25 /pmc/articles/PMC6553374/ /pubmed/31293732 http://dx.doi.org/10.1039/c8sc04897e Text en This journal is © The Royal Society of Chemistry 2019 http://creativecommons.org/licenses/by-nc/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution Non Commercial 3.0 Unported Licence (CC BY-NC 3.0)
spellingShingle Chemistry
Jenner, Matthew
Jian, Xinyun
Dashti, Yousef
Masschelein, Joleen
Hobson, Christian
Roberts, Douglas M.
Jones, Cerith
Harris, Simon
Parkhill, Julian
Raja, Huzefa A.
Oberlies, Nicholas H.
Pearce, Cedric J.
Mahenthiralingam, Eshwar
Challis, Gregory L.
An unusual Burkholderia gladioli double chain-initiating nonribosomal peptide synthetase assembles ‘fungal’ icosalide antibiotics
title An unusual Burkholderia gladioli double chain-initiating nonribosomal peptide synthetase assembles ‘fungal’ icosalide antibiotics
title_full An unusual Burkholderia gladioli double chain-initiating nonribosomal peptide synthetase assembles ‘fungal’ icosalide antibiotics
title_fullStr An unusual Burkholderia gladioli double chain-initiating nonribosomal peptide synthetase assembles ‘fungal’ icosalide antibiotics
title_full_unstemmed An unusual Burkholderia gladioli double chain-initiating nonribosomal peptide synthetase assembles ‘fungal’ icosalide antibiotics
title_short An unusual Burkholderia gladioli double chain-initiating nonribosomal peptide synthetase assembles ‘fungal’ icosalide antibiotics
title_sort unusual burkholderia gladioli double chain-initiating nonribosomal peptide synthetase assembles ‘fungal’ icosalide antibiotics
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6553374/
https://www.ncbi.nlm.nih.gov/pubmed/31293732
http://dx.doi.org/10.1039/c8sc04897e
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