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A BioBricks Metabolic Engineering Platform for the Biosynthesis of Anthracyclinones in Streptomyces coelicolor

[Image: see text] Actinomycetes produce a variety of clinically indispensable molecules, such as antineoplastic anthracyclines. However, the actinomycetes are hindered in their further development as genetically engineered hosts for the synthesis of new anthracycline analogues due to their slow grow...

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Autores principales: Wang, Rongbin, Nguyen, Jennifer, Hecht, Jacob, Schwartz, Nora, Brown, Katelyn V., Ponomareva, Larissa V., Niemczura, Magdalena, van Dissel, Dino, van Wezel, Gilles P., Thorson, Jon S., Metsä-Ketelä, Mikko, Shaaban, Khaled A., Nybo, S. Eric
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9764417/
https://www.ncbi.nlm.nih.gov/pubmed/36378506
http://dx.doi.org/10.1021/acssynbio.2c00498
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author Wang, Rongbin
Nguyen, Jennifer
Hecht, Jacob
Schwartz, Nora
Brown, Katelyn V.
Ponomareva, Larissa V.
Niemczura, Magdalena
van Dissel, Dino
van Wezel, Gilles P.
Thorson, Jon S.
Metsä-Ketelä, Mikko
Shaaban, Khaled A.
Nybo, S. Eric
author_facet Wang, Rongbin
Nguyen, Jennifer
Hecht, Jacob
Schwartz, Nora
Brown, Katelyn V.
Ponomareva, Larissa V.
Niemczura, Magdalena
van Dissel, Dino
van Wezel, Gilles P.
Thorson, Jon S.
Metsä-Ketelä, Mikko
Shaaban, Khaled A.
Nybo, S. Eric
author_sort Wang, Rongbin
collection PubMed
description [Image: see text] Actinomycetes produce a variety of clinically indispensable molecules, such as antineoplastic anthracyclines. However, the actinomycetes are hindered in their further development as genetically engineered hosts for the synthesis of new anthracycline analogues due to their slow growth kinetics associated with their mycelial life cycle and the lack of a comprehensive genetic toolbox for combinatorial biosynthesis. In this report, we tackled both issues via the development of the BIOPOLYMER (BIOBricks POLYketide Metabolic EngineeRing) toolbox: a comprehensive synthetic biology toolbox consisting of engineered strains, promoters, vectors, and biosynthetic genes for the synthesis of anthracyclinones. An improved derivative of the production host Streptomyces coelicolor M1152 was created by deleting the matAB gene cluster that specifies extracellular poly-β-1,6-N-acetylglucosamine (PNAG). This resulted in a loss of mycelial aggregation, with improved biomass accumulation and anthracyclinone production. We then leveraged BIOPOLYMER to engineer four distinct anthracyclinone pathways, identifying optimal combinations of promoters, genes, and vectors to produce aklavinone, 9-epi-aklavinone, auramycinone, and nogalamycinone at titers between 15–20 mg/L. Optimization of nogalamycinone production strains resulted in titers of 103 mg/L. We structurally characterized six anthracyclinone products from fermentations, including new compounds 9,10-seco-7-deoxy-nogalamycinone and 4-O-β-d-glucosyl-nogalamycinone. Lastly, we tested the antiproliferative activity of the anthracyclinones in a mammalian cancer cell viability assay, in which nogalamycinone, auramycinone, and aklavinone exhibited moderate cytotoxicity against several cancer cell lines. We envision that BIOPOLYMER will serve as a foundational platform technology for the synthesis of designer anthracycline analogues.
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spelling pubmed-97644172022-12-21 A BioBricks Metabolic Engineering Platform for the Biosynthesis of Anthracyclinones in Streptomyces coelicolor Wang, Rongbin Nguyen, Jennifer Hecht, Jacob Schwartz, Nora Brown, Katelyn V. Ponomareva, Larissa V. Niemczura, Magdalena van Dissel, Dino van Wezel, Gilles P. Thorson, Jon S. Metsä-Ketelä, Mikko Shaaban, Khaled A. Nybo, S. Eric ACS Synth Biol [Image: see text] Actinomycetes produce a variety of clinically indispensable molecules, such as antineoplastic anthracyclines. However, the actinomycetes are hindered in their further development as genetically engineered hosts for the synthesis of new anthracycline analogues due to their slow growth kinetics associated with their mycelial life cycle and the lack of a comprehensive genetic toolbox for combinatorial biosynthesis. In this report, we tackled both issues via the development of the BIOPOLYMER (BIOBricks POLYketide Metabolic EngineeRing) toolbox: a comprehensive synthetic biology toolbox consisting of engineered strains, promoters, vectors, and biosynthetic genes for the synthesis of anthracyclinones. An improved derivative of the production host Streptomyces coelicolor M1152 was created by deleting the matAB gene cluster that specifies extracellular poly-β-1,6-N-acetylglucosamine (PNAG). This resulted in a loss of mycelial aggregation, with improved biomass accumulation and anthracyclinone production. We then leveraged BIOPOLYMER to engineer four distinct anthracyclinone pathways, identifying optimal combinations of promoters, genes, and vectors to produce aklavinone, 9-epi-aklavinone, auramycinone, and nogalamycinone at titers between 15–20 mg/L. Optimization of nogalamycinone production strains resulted in titers of 103 mg/L. We structurally characterized six anthracyclinone products from fermentations, including new compounds 9,10-seco-7-deoxy-nogalamycinone and 4-O-β-d-glucosyl-nogalamycinone. Lastly, we tested the antiproliferative activity of the anthracyclinones in a mammalian cancer cell viability assay, in which nogalamycinone, auramycinone, and aklavinone exhibited moderate cytotoxicity against several cancer cell lines. We envision that BIOPOLYMER will serve as a foundational platform technology for the synthesis of designer anthracycline analogues. American Chemical Society 2022-11-15 2022-12-16 /pmc/articles/PMC9764417/ /pubmed/36378506 http://dx.doi.org/10.1021/acssynbio.2c00498 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Wang, Rongbin
Nguyen, Jennifer
Hecht, Jacob
Schwartz, Nora
Brown, Katelyn V.
Ponomareva, Larissa V.
Niemczura, Magdalena
van Dissel, Dino
van Wezel, Gilles P.
Thorson, Jon S.
Metsä-Ketelä, Mikko
Shaaban, Khaled A.
Nybo, S. Eric
A BioBricks Metabolic Engineering Platform for the Biosynthesis of Anthracyclinones in Streptomyces coelicolor
title A BioBricks Metabolic Engineering Platform for the Biosynthesis of Anthracyclinones in Streptomyces coelicolor
title_full A BioBricks Metabolic Engineering Platform for the Biosynthesis of Anthracyclinones in Streptomyces coelicolor
title_fullStr A BioBricks Metabolic Engineering Platform for the Biosynthesis of Anthracyclinones in Streptomyces coelicolor
title_full_unstemmed A BioBricks Metabolic Engineering Platform for the Biosynthesis of Anthracyclinones in Streptomyces coelicolor
title_short A BioBricks Metabolic Engineering Platform for the Biosynthesis of Anthracyclinones in Streptomyces coelicolor
title_sort biobricks metabolic engineering platform for the biosynthesis of anthracyclinones in streptomyces coelicolor
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9764417/
https://www.ncbi.nlm.nih.gov/pubmed/36378506
http://dx.doi.org/10.1021/acssynbio.2c00498
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