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Precise cloning and tandem integration of large polyketide biosynthetic gene cluster using Streptomyces artificial chromosome system

BACKGROUND: Direct cloning combined with heterologous expression of a secondary metabolite biosynthetic gene cluster has become a useful strategy for production improvement and pathway modification of potentially valuable natural products present at minute quantities in original isolates of actinomy...

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Autores principales: Nah, Hee-Ju, Woo, Min-Woo, Choi, Si-Sun, Kim, Eung-Soo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4573296/
https://www.ncbi.nlm.nih.gov/pubmed/26377404
http://dx.doi.org/10.1186/s12934-015-0325-2
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author Nah, Hee-Ju
Woo, Min-Woo
Choi, Si-Sun
Kim, Eung-Soo
author_facet Nah, Hee-Ju
Woo, Min-Woo
Choi, Si-Sun
Kim, Eung-Soo
author_sort Nah, Hee-Ju
collection PubMed
description BACKGROUND: Direct cloning combined with heterologous expression of a secondary metabolite biosynthetic gene cluster has become a useful strategy for production improvement and pathway modification of potentially valuable natural products present at minute quantities in original isolates of actinomycetes. However, precise cloning and efficient overexpression of an entire biosynthetic gene cluster remains challenging due to the ineffectiveness of current genetic systems in manipulating large-sized gene clusters for heterologous as well as homologous expression. RESULTS: A versatile Escherichia coli-Streptomyces shuttle bacterial artificial chromosomal (BAC) conjugation vector, pSBAC, was used along with a cluster tandem integration approach to carry out homologous and heterologous overexpression of a large 80-kb polyketide biosynthetic pathway gene cluster of tautomycetin (TMC), which is a protein phosphatase PP1/PP2A inhibitor and T cell-specific immunosuppressant. Unique XbaI restriction sites were precisely inserted at both border regions of the TMC biosynthetic gene cluster within the chromosome of TMC-producing Streptomyces sp. CK4412, followed by site-specific recombination of pSBAC into the flanking region of the TMC gene cluster. The entire TMC gene cluster was then rescued as a single giant recombinant pSBAC by XbaI digestion of the chromosomal DNA as well as subsequent self-ligation. Next, the recombinant pSBAC construct containing the entire TMC cluster in E. coli was directly conjugated into model Streptomyces strains, resulting in rapid and enhanced TMC production. Moreover, introduction of the TMC cluster-containing pSBAC into wild-type Streptomyces sp. CK4412 as well as a recombinant S. coelicolor strain resulted in a chromosomal tandem repeat of the entire TMC cluster with 14-fold and 5.4-fold enhanced TMC productivities, respectively. CONCLUSIONS: The 80-kb TMC biosynthetic gene cluster was isolated in a single integration vector, pSBAC. Introduction of TMC biosynthetic gene cluster in TMC non-producing strains has resulted in similar amount of TMC production yield. Moreover, over-expression of TMC biosynthetic gene cluster in original producing strain and recombinant S. coelicolor dramatically increased TMC production. Thus, this strategy can be employed to develop a custom overexpression scheme of entire metabolite pathway clusters present in actinomycetes. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1186/s12934-015-0325-2) contains supplementary material, which is available to authorized users.
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spelling pubmed-45732962015-09-18 Precise cloning and tandem integration of large polyketide biosynthetic gene cluster using Streptomyces artificial chromosome system Nah, Hee-Ju Woo, Min-Woo Choi, Si-Sun Kim, Eung-Soo Microb Cell Fact Research BACKGROUND: Direct cloning combined with heterologous expression of a secondary metabolite biosynthetic gene cluster has become a useful strategy for production improvement and pathway modification of potentially valuable natural products present at minute quantities in original isolates of actinomycetes. However, precise cloning and efficient overexpression of an entire biosynthetic gene cluster remains challenging due to the ineffectiveness of current genetic systems in manipulating large-sized gene clusters for heterologous as well as homologous expression. RESULTS: A versatile Escherichia coli-Streptomyces shuttle bacterial artificial chromosomal (BAC) conjugation vector, pSBAC, was used along with a cluster tandem integration approach to carry out homologous and heterologous overexpression of a large 80-kb polyketide biosynthetic pathway gene cluster of tautomycetin (TMC), which is a protein phosphatase PP1/PP2A inhibitor and T cell-specific immunosuppressant. Unique XbaI restriction sites were precisely inserted at both border regions of the TMC biosynthetic gene cluster within the chromosome of TMC-producing Streptomyces sp. CK4412, followed by site-specific recombination of pSBAC into the flanking region of the TMC gene cluster. The entire TMC gene cluster was then rescued as a single giant recombinant pSBAC by XbaI digestion of the chromosomal DNA as well as subsequent self-ligation. Next, the recombinant pSBAC construct containing the entire TMC cluster in E. coli was directly conjugated into model Streptomyces strains, resulting in rapid and enhanced TMC production. Moreover, introduction of the TMC cluster-containing pSBAC into wild-type Streptomyces sp. CK4412 as well as a recombinant S. coelicolor strain resulted in a chromosomal tandem repeat of the entire TMC cluster with 14-fold and 5.4-fold enhanced TMC productivities, respectively. CONCLUSIONS: The 80-kb TMC biosynthetic gene cluster was isolated in a single integration vector, pSBAC. Introduction of TMC biosynthetic gene cluster in TMC non-producing strains has resulted in similar amount of TMC production yield. Moreover, over-expression of TMC biosynthetic gene cluster in original producing strain and recombinant S. coelicolor dramatically increased TMC production. Thus, this strategy can be employed to develop a custom overexpression scheme of entire metabolite pathway clusters present in actinomycetes. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1186/s12934-015-0325-2) contains supplementary material, which is available to authorized users. BioMed Central 2015-09-16 /pmc/articles/PMC4573296/ /pubmed/26377404 http://dx.doi.org/10.1186/s12934-015-0325-2 Text en © Nah et al. 2015 Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Nah, Hee-Ju
Woo, Min-Woo
Choi, Si-Sun
Kim, Eung-Soo
Precise cloning and tandem integration of large polyketide biosynthetic gene cluster using Streptomyces artificial chromosome system
title Precise cloning and tandem integration of large polyketide biosynthetic gene cluster using Streptomyces artificial chromosome system
title_full Precise cloning and tandem integration of large polyketide biosynthetic gene cluster using Streptomyces artificial chromosome system
title_fullStr Precise cloning and tandem integration of large polyketide biosynthetic gene cluster using Streptomyces artificial chromosome system
title_full_unstemmed Precise cloning and tandem integration of large polyketide biosynthetic gene cluster using Streptomyces artificial chromosome system
title_short Precise cloning and tandem integration of large polyketide biosynthetic gene cluster using Streptomyces artificial chromosome system
title_sort precise cloning and tandem integration of large polyketide biosynthetic gene cluster using streptomyces artificial chromosome system
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4573296/
https://www.ncbi.nlm.nih.gov/pubmed/26377404
http://dx.doi.org/10.1186/s12934-015-0325-2
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