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Discovery of the Pseudomonas Polyyne Protegencin by a Phylogeny-Guided Study of Polyyne Biosynthetic Gene Cluster Diversity

Natural products that possess alkyne or polyyne moieties have been isolated from a variety of biological sources and possess a broad a range of bioactivities. In bacteria, the basic biosynthesis of polyynes is known, but their biosynthetic gene cluster (BGC) distribution and evolutionary relationshi...

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Autores principales: Mullins, Alex J., Webster, Gordon, Kim, Hak Joong, Zhao, Jinlian, Petrova, Yoana D., Ramming, Christina E., Jenner, Matthew, Murray, James A. H., Connor, Thomas R., Hertweck, Christian, Challis, Gregory L., Mahenthiralingam, Eshwar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8406139/
https://www.ncbi.nlm.nih.gov/pubmed/34340549
http://dx.doi.org/10.1128/mBio.00715-21
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author Mullins, Alex J.
Webster, Gordon
Kim, Hak Joong
Zhao, Jinlian
Petrova, Yoana D.
Ramming, Christina E.
Jenner, Matthew
Murray, James A. H.
Connor, Thomas R.
Hertweck, Christian
Challis, Gregory L.
Mahenthiralingam, Eshwar
author_facet Mullins, Alex J.
Webster, Gordon
Kim, Hak Joong
Zhao, Jinlian
Petrova, Yoana D.
Ramming, Christina E.
Jenner, Matthew
Murray, James A. H.
Connor, Thomas R.
Hertweck, Christian
Challis, Gregory L.
Mahenthiralingam, Eshwar
author_sort Mullins, Alex J.
collection PubMed
description Natural products that possess alkyne or polyyne moieties have been isolated from a variety of biological sources and possess a broad a range of bioactivities. In bacteria, the basic biosynthesis of polyynes is known, but their biosynthetic gene cluster (BGC) distribution and evolutionary relationship to alkyne biosynthesis have not been addressed. Through comprehensive genomic and phylogenetic analyses, the distribution of alkyne biosynthesis gene cassettes throughout bacteria was explored, revealing evidence of multiple horizontal gene transfer events. After investigation of the evolutionary connection between alkyne and polyyne biosynthesis, a monophyletic clade was identified that possessed a conserved seven-gene cassette for polyyne biosynthesis that built upon the conserved three-gene cassette for alkyne biosynthesis. Further diversity mapping of the conserved polyyne gene cassette revealed a phylogenetic subclade for an uncharacterized polyyne BGC present in several Pseudomonas species, designated pgn. Pathway mutagenesis and high-resolution analytical chemistry showed the Pseudomonas protegens pgn BGC directed the biosynthesis of a novel polyyne, protegencin. Exploration of the biosynthetic logic behind polyyne production, through BGC mutagenesis and analytical chemistry, highlighted the essentiality of a triad of desaturase proteins and a thioesterase in both the P. protegens pgn and Trinickia caryophylli (formerly Burkholderia caryophylli) caryoynencin pathways. We have unified and expanded knowledge of polyyne diversity and uniquely demonstrated that alkyne and polyyne biosynthetic gene clusters are evolutionarily related and widely distributed within bacteria. The systematic mapping of conserved biosynthetic genes across the available bacterial genomic diversity proved to be a fruitful method for discovering new natural products and better understanding polyyne biosynthesis.
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spelling pubmed-84061392021-09-09 Discovery of the Pseudomonas Polyyne Protegencin by a Phylogeny-Guided Study of Polyyne Biosynthetic Gene Cluster Diversity Mullins, Alex J. Webster, Gordon Kim, Hak Joong Zhao, Jinlian Petrova, Yoana D. Ramming, Christina E. Jenner, Matthew Murray, James A. H. Connor, Thomas R. Hertweck, Christian Challis, Gregory L. Mahenthiralingam, Eshwar mBio Research Article Natural products that possess alkyne or polyyne moieties have been isolated from a variety of biological sources and possess a broad a range of bioactivities. In bacteria, the basic biosynthesis of polyynes is known, but their biosynthetic gene cluster (BGC) distribution and evolutionary relationship to alkyne biosynthesis have not been addressed. Through comprehensive genomic and phylogenetic analyses, the distribution of alkyne biosynthesis gene cassettes throughout bacteria was explored, revealing evidence of multiple horizontal gene transfer events. After investigation of the evolutionary connection between alkyne and polyyne biosynthesis, a monophyletic clade was identified that possessed a conserved seven-gene cassette for polyyne biosynthesis that built upon the conserved three-gene cassette for alkyne biosynthesis. Further diversity mapping of the conserved polyyne gene cassette revealed a phylogenetic subclade for an uncharacterized polyyne BGC present in several Pseudomonas species, designated pgn. Pathway mutagenesis and high-resolution analytical chemistry showed the Pseudomonas protegens pgn BGC directed the biosynthesis of a novel polyyne, protegencin. Exploration of the biosynthetic logic behind polyyne production, through BGC mutagenesis and analytical chemistry, highlighted the essentiality of a triad of desaturase proteins and a thioesterase in both the P. protegens pgn and Trinickia caryophylli (formerly Burkholderia caryophylli) caryoynencin pathways. We have unified and expanded knowledge of polyyne diversity and uniquely demonstrated that alkyne and polyyne biosynthetic gene clusters are evolutionarily related and widely distributed within bacteria. The systematic mapping of conserved biosynthetic genes across the available bacterial genomic diversity proved to be a fruitful method for discovering new natural products and better understanding polyyne biosynthesis. American Society for Microbiology 2021-08-03 /pmc/articles/PMC8406139/ /pubmed/34340549 http://dx.doi.org/10.1128/mBio.00715-21 Text en Copyright © 2021 Mullins et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Mullins, Alex J.
Webster, Gordon
Kim, Hak Joong
Zhao, Jinlian
Petrova, Yoana D.
Ramming, Christina E.
Jenner, Matthew
Murray, James A. H.
Connor, Thomas R.
Hertweck, Christian
Challis, Gregory L.
Mahenthiralingam, Eshwar
Discovery of the Pseudomonas Polyyne Protegencin by a Phylogeny-Guided Study of Polyyne Biosynthetic Gene Cluster Diversity
title Discovery of the Pseudomonas Polyyne Protegencin by a Phylogeny-Guided Study of Polyyne Biosynthetic Gene Cluster Diversity
title_full Discovery of the Pseudomonas Polyyne Protegencin by a Phylogeny-Guided Study of Polyyne Biosynthetic Gene Cluster Diversity
title_fullStr Discovery of the Pseudomonas Polyyne Protegencin by a Phylogeny-Guided Study of Polyyne Biosynthetic Gene Cluster Diversity
title_full_unstemmed Discovery of the Pseudomonas Polyyne Protegencin by a Phylogeny-Guided Study of Polyyne Biosynthetic Gene Cluster Diversity
title_short Discovery of the Pseudomonas Polyyne Protegencin by a Phylogeny-Guided Study of Polyyne Biosynthetic Gene Cluster Diversity
title_sort discovery of the pseudomonas polyyne protegencin by a phylogeny-guided study of polyyne biosynthetic gene cluster diversity
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8406139/
https://www.ncbi.nlm.nih.gov/pubmed/34340549
http://dx.doi.org/10.1128/mBio.00715-21
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