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A Regulator Based “Semi-Targeted” Approach to Activate Silent Biosynthetic Gene Clusters

By culturing microorganisms under standard laboratory conditions, most biosynthetic gene clusters (BGCs) are not expressed, and thus, the products are not produced. To explore this biosynthetic potential, we developed a novel “semi-targeted” approach focusing on activating “silent” BGCs by concurren...

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Autores principales: Mingyar, Erik, Mühling, Lucas, Kulik, Andreas, Winkler, Anika, Wibberg, Daniel, Kalinowski, Jörn, Blin, Kai, Weber, Tilmann, Wohlleben, Wolfgang, Stegmann, Evi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8306873/
https://www.ncbi.nlm.nih.gov/pubmed/34299187
http://dx.doi.org/10.3390/ijms22147567
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author Mingyar, Erik
Mühling, Lucas
Kulik, Andreas
Winkler, Anika
Wibberg, Daniel
Kalinowski, Jörn
Blin, Kai
Weber, Tilmann
Wohlleben, Wolfgang
Stegmann, Evi
author_facet Mingyar, Erik
Mühling, Lucas
Kulik, Andreas
Winkler, Anika
Wibberg, Daniel
Kalinowski, Jörn
Blin, Kai
Weber, Tilmann
Wohlleben, Wolfgang
Stegmann, Evi
author_sort Mingyar, Erik
collection PubMed
description By culturing microorganisms under standard laboratory conditions, most biosynthetic gene clusters (BGCs) are not expressed, and thus, the products are not produced. To explore this biosynthetic potential, we developed a novel “semi-targeted” approach focusing on activating “silent” BGCs by concurrently introducing a group of regulator genes into streptomycetes of the Tübingen strain collection. We constructed integrative plasmids containing two classes of regulatory genes under the control of the constitutive promoter ermE*p (cluster situated regulators (CSR) and Streptomyces antibiotic regulatory proteins (SARPs)). These plasmids were introduced into Streptomyces sp. TÜ17, Streptomyces sp. TÜ10 and Streptomyces sp. TÜ102. Introduction of the CSRs-plasmid into strain S. sp. TÜ17 activated the production of mayamycin A. By using the individual regulator genes, we proved that Aur1P, was responsible for the activation. In strain S. sp. TÜ102, the introduction of the SARP-plasmid triggered the production of a chartreusin-like compound. Insertion of the CSRs-plasmid into strain S. sp. TÜ10 resulted in activating the warkmycin-BGC. In both recombinants, activation of the BGCs was only possible through the simultaneous expression of aur1PR3 and griR in S. sp. TÜ102 and aur1P and pntR in of S. sp. TÜ10.
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spelling pubmed-83068732021-07-25 A Regulator Based “Semi-Targeted” Approach to Activate Silent Biosynthetic Gene Clusters Mingyar, Erik Mühling, Lucas Kulik, Andreas Winkler, Anika Wibberg, Daniel Kalinowski, Jörn Blin, Kai Weber, Tilmann Wohlleben, Wolfgang Stegmann, Evi Int J Mol Sci Article By culturing microorganisms under standard laboratory conditions, most biosynthetic gene clusters (BGCs) are not expressed, and thus, the products are not produced. To explore this biosynthetic potential, we developed a novel “semi-targeted” approach focusing on activating “silent” BGCs by concurrently introducing a group of regulator genes into streptomycetes of the Tübingen strain collection. We constructed integrative plasmids containing two classes of regulatory genes under the control of the constitutive promoter ermE*p (cluster situated regulators (CSR) and Streptomyces antibiotic regulatory proteins (SARPs)). These plasmids were introduced into Streptomyces sp. TÜ17, Streptomyces sp. TÜ10 and Streptomyces sp. TÜ102. Introduction of the CSRs-plasmid into strain S. sp. TÜ17 activated the production of mayamycin A. By using the individual regulator genes, we proved that Aur1P, was responsible for the activation. In strain S. sp. TÜ102, the introduction of the SARP-plasmid triggered the production of a chartreusin-like compound. Insertion of the CSRs-plasmid into strain S. sp. TÜ10 resulted in activating the warkmycin-BGC. In both recombinants, activation of the BGCs was only possible through the simultaneous expression of aur1PR3 and griR in S. sp. TÜ102 and aur1P and pntR in of S. sp. TÜ10. MDPI 2021-07-15 /pmc/articles/PMC8306873/ /pubmed/34299187 http://dx.doi.org/10.3390/ijms22147567 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Mingyar, Erik
Mühling, Lucas
Kulik, Andreas
Winkler, Anika
Wibberg, Daniel
Kalinowski, Jörn
Blin, Kai
Weber, Tilmann
Wohlleben, Wolfgang
Stegmann, Evi
A Regulator Based “Semi-Targeted” Approach to Activate Silent Biosynthetic Gene Clusters
title A Regulator Based “Semi-Targeted” Approach to Activate Silent Biosynthetic Gene Clusters
title_full A Regulator Based “Semi-Targeted” Approach to Activate Silent Biosynthetic Gene Clusters
title_fullStr A Regulator Based “Semi-Targeted” Approach to Activate Silent Biosynthetic Gene Clusters
title_full_unstemmed A Regulator Based “Semi-Targeted” Approach to Activate Silent Biosynthetic Gene Clusters
title_short A Regulator Based “Semi-Targeted” Approach to Activate Silent Biosynthetic Gene Clusters
title_sort regulator based “semi-targeted” approach to activate silent biosynthetic gene clusters
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8306873/
https://www.ncbi.nlm.nih.gov/pubmed/34299187
http://dx.doi.org/10.3390/ijms22147567
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