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Genomic and Chemical Decryption of the Bacteroidetes Phylum for Its Potential to Biosynthesize Natural Products

With progress in genome sequencing and data sharing, 1,000s of bacterial genomes are publicly available. Genome mining—using bioinformatics tools in terms of biosynthetic gene cluster (BGC) identification, analysis, and rating—has become a key technology to explore the capabilities for natural produ...

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Autores principales: Brinkmann, Stephan, Kurz, Michael, Patras, Maria A., Hartwig, Christoph, Marner, Michael, Leis, Benedikt, Billion, André, Kleiner, Yolanda, Bauer, Armin, Toti, Luigi, Pöverlein, Christoph, Hammann, Peter E., Vilcinskas, Andreas, Glaeser, Jens, Spohn, Marius, Schäberle, Till F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9248904/
https://www.ncbi.nlm.nih.gov/pubmed/35442080
http://dx.doi.org/10.1128/spectrum.02479-21
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author Brinkmann, Stephan
Kurz, Michael
Patras, Maria A.
Hartwig, Christoph
Marner, Michael
Leis, Benedikt
Billion, André
Kleiner, Yolanda
Bauer, Armin
Toti, Luigi
Pöverlein, Christoph
Hammann, Peter E.
Vilcinskas, Andreas
Glaeser, Jens
Spohn, Marius
Schäberle, Till F.
author_facet Brinkmann, Stephan
Kurz, Michael
Patras, Maria A.
Hartwig, Christoph
Marner, Michael
Leis, Benedikt
Billion, André
Kleiner, Yolanda
Bauer, Armin
Toti, Luigi
Pöverlein, Christoph
Hammann, Peter E.
Vilcinskas, Andreas
Glaeser, Jens
Spohn, Marius
Schäberle, Till F.
author_sort Brinkmann, Stephan
collection PubMed
description With progress in genome sequencing and data sharing, 1,000s of bacterial genomes are publicly available. Genome mining—using bioinformatics tools in terms of biosynthetic gene cluster (BGC) identification, analysis, and rating—has become a key technology to explore the capabilities for natural product (NP) biosynthesis. Comprehensively, analyzing the genetic potential of the phylum Bacteroidetes revealed Chitinophaga as the most talented genus in terms of BGC abundance and diversity. Guided by the computational predictions, we conducted a metabolomics and bioactivity driven NP discovery program on 25 Chitinophaga strains. High numbers of strain-specific metabolite buckets confirmed the upfront predicted biosynthetic potential and revealed a tremendous uncharted chemical space. Mining this data set, we isolated the new iron chelating nonribosomally synthesized cyclic tetradeca- and pentadecalipodepsipeptide antibiotics chitinopeptins with activity against Candida, produced by C. eiseniae DSM 22224 and C. flava KCTC 62435, respectively. IMPORTANCE The development of pipelines for anti-infectives to be applied in plant, animal, and human health management are dried up. However, the resistance development against compounds in use calls for new lead structures. To fill this gap and to enhance the probability of success for the discovery of new bioactive natural products, microbial taxa currently underinvestigated must be mined. This study investigates the potential within the bacterial phylum Bacteroidetes. A combination of omics-technologies revealed taxonomical hot spots for specialized metabolites. Genome- and metabolome-based analyses showed that the phylum covers a new chemical space compared with classic natural product producers. Members of the Bacteroidetes may thus present a promising bioresource for future screening and isolation campaigns.
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spelling pubmed-92489042022-07-02 Genomic and Chemical Decryption of the Bacteroidetes Phylum for Its Potential to Biosynthesize Natural Products Brinkmann, Stephan Kurz, Michael Patras, Maria A. Hartwig, Christoph Marner, Michael Leis, Benedikt Billion, André Kleiner, Yolanda Bauer, Armin Toti, Luigi Pöverlein, Christoph Hammann, Peter E. Vilcinskas, Andreas Glaeser, Jens Spohn, Marius Schäberle, Till F. Microbiol Spectr Research Article With progress in genome sequencing and data sharing, 1,000s of bacterial genomes are publicly available. Genome mining—using bioinformatics tools in terms of biosynthetic gene cluster (BGC) identification, analysis, and rating—has become a key technology to explore the capabilities for natural product (NP) biosynthesis. Comprehensively, analyzing the genetic potential of the phylum Bacteroidetes revealed Chitinophaga as the most talented genus in terms of BGC abundance and diversity. Guided by the computational predictions, we conducted a metabolomics and bioactivity driven NP discovery program on 25 Chitinophaga strains. High numbers of strain-specific metabolite buckets confirmed the upfront predicted biosynthetic potential and revealed a tremendous uncharted chemical space. Mining this data set, we isolated the new iron chelating nonribosomally synthesized cyclic tetradeca- and pentadecalipodepsipeptide antibiotics chitinopeptins with activity against Candida, produced by C. eiseniae DSM 22224 and C. flava KCTC 62435, respectively. IMPORTANCE The development of pipelines for anti-infectives to be applied in plant, animal, and human health management are dried up. However, the resistance development against compounds in use calls for new lead structures. To fill this gap and to enhance the probability of success for the discovery of new bioactive natural products, microbial taxa currently underinvestigated must be mined. This study investigates the potential within the bacterial phylum Bacteroidetes. A combination of omics-technologies revealed taxonomical hot spots for specialized metabolites. Genome- and metabolome-based analyses showed that the phylum covers a new chemical space compared with classic natural product producers. Members of the Bacteroidetes may thus present a promising bioresource for future screening and isolation campaigns. American Society for Microbiology 2022-04-20 /pmc/articles/PMC9248904/ /pubmed/35442080 http://dx.doi.org/10.1128/spectrum.02479-21 Text en Copyright © 2022 Brinkmann 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
Brinkmann, Stephan
Kurz, Michael
Patras, Maria A.
Hartwig, Christoph
Marner, Michael
Leis, Benedikt
Billion, André
Kleiner, Yolanda
Bauer, Armin
Toti, Luigi
Pöverlein, Christoph
Hammann, Peter E.
Vilcinskas, Andreas
Glaeser, Jens
Spohn, Marius
Schäberle, Till F.
Genomic and Chemical Decryption of the Bacteroidetes Phylum for Its Potential to Biosynthesize Natural Products
title Genomic and Chemical Decryption of the Bacteroidetes Phylum for Its Potential to Biosynthesize Natural Products
title_full Genomic and Chemical Decryption of the Bacteroidetes Phylum for Its Potential to Biosynthesize Natural Products
title_fullStr Genomic and Chemical Decryption of the Bacteroidetes Phylum for Its Potential to Biosynthesize Natural Products
title_full_unstemmed Genomic and Chemical Decryption of the Bacteroidetes Phylum for Its Potential to Biosynthesize Natural Products
title_short Genomic and Chemical Decryption of the Bacteroidetes Phylum for Its Potential to Biosynthesize Natural Products
title_sort genomic and chemical decryption of the bacteroidetes phylum for its potential to biosynthesize natural products
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9248904/
https://www.ncbi.nlm.nih.gov/pubmed/35442080
http://dx.doi.org/10.1128/spectrum.02479-21
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