Cargando…

The Disorazole Z Family of Highly Potent Anticancer Natural Products from Sorangium cellulosum: Structure, Bioactivity, Biosynthesis, and Heterologous Expression

Myxobacteria serve as a treasure trove of secondary metabolites. During our ongoing search for bioactive natural products, a novel subclass of disorazoles termed disorazole Z was discovered. Ten disorazole Z family members were purified from a large-scale fermentation of the myxobacterium Sorangium...

Descripción completa

Detalles Bibliográficos
Autores principales: Gao, Yunsheng, Birkelbach, Joy, Fu, Chengzhang, Herrmann, Jennifer, Irschik, Herbert, Morgenstern, Bernd, Hirschfelder, Kerstin, Li, Ruijuan, Zhang, Youming, Jansen, Rolf, Müller, Rolf
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10434194/
https://www.ncbi.nlm.nih.gov/pubmed/37318329
http://dx.doi.org/10.1128/spectrum.00730-23
_version_ 1785091829933277184
author Gao, Yunsheng
Birkelbach, Joy
Fu, Chengzhang
Herrmann, Jennifer
Irschik, Herbert
Morgenstern, Bernd
Hirschfelder, Kerstin
Li, Ruijuan
Zhang, Youming
Jansen, Rolf
Müller, Rolf
author_facet Gao, Yunsheng
Birkelbach, Joy
Fu, Chengzhang
Herrmann, Jennifer
Irschik, Herbert
Morgenstern, Bernd
Hirschfelder, Kerstin
Li, Ruijuan
Zhang, Youming
Jansen, Rolf
Müller, Rolf
author_sort Gao, Yunsheng
collection PubMed
description Myxobacteria serve as a treasure trove of secondary metabolites. During our ongoing search for bioactive natural products, a novel subclass of disorazoles termed disorazole Z was discovered. Ten disorazole Z family members were purified from a large-scale fermentation of the myxobacterium Sorangium cellulosum So ce1875 and characterized by electrospray ionization–high-resolution mass spectrometry (ESI-HRMS), X-ray, nuclear magnetic resonance (NMR), and Mosher ester analysis. Disorazole Z compounds are characterized by the lack of one polyketide extension cycle, resulting in a shortened monomer in comparison to disorazole A, which finally forms a dimer in the bis-lactone core structure. In addition, an unprecedented modification of a geminal dimethyl group takes place to form a carboxylic acid methyl ester. The main component disorazole Z1 shows comparable activity in effectively killing cancer cells to disorazole A1 via binding to tubulin, which we show induces microtubule depolymerization, endoplasmic reticulum delocalization, and eventually apoptosis. The disorazole Z biosynthetic gene cluster (BGC) was identified and characterized from the alternative producer S. cellulosum So ce427 and compared to the known disorazole A BGC, followed by heterologous expression in the host Myxococcus xanthus DK1622. Pathway engineering by promoter substitution and gene deletion paves the way for detailed biosynthesis studies and efficient heterologous production of disorazole Z congeners. IMPORTANCE Microbial secondary metabolites are a prolific reservoir for the discovery of bioactive compounds, which prove to be privileged scaffolds for the development of new drugs such as antibacterial and small-molecule anticancer drugs. Consequently, the continuous discovery of novel bioactive natural products is of great importance for pharmaceutical research. Myxobacteria, especially Sorangium spp., which are known for their large genomes with yet-underexploited biosynthetic potential, are proficient producers of such secondary metabolites. From the fermentation broth of Sorangium cellulosum strain So ce1875, we isolated and characterized a family of natural products named disorazole Z, which showed potent anticancer activity. Further, we report on the biosynthesis and heterologous production of disorazole Z. These results can be stepping stones toward pharmaceutical development of the disorazole family of anticancer natural products for (pre)clinical studies.
format Online
Article
Text
id pubmed-10434194
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-104341942023-08-18 The Disorazole Z Family of Highly Potent Anticancer Natural Products from Sorangium cellulosum: Structure, Bioactivity, Biosynthesis, and Heterologous Expression Gao, Yunsheng Birkelbach, Joy Fu, Chengzhang Herrmann, Jennifer Irschik, Herbert Morgenstern, Bernd Hirschfelder, Kerstin Li, Ruijuan Zhang, Youming Jansen, Rolf Müller, Rolf Microbiol Spectr Research Article Myxobacteria serve as a treasure trove of secondary metabolites. During our ongoing search for bioactive natural products, a novel subclass of disorazoles termed disorazole Z was discovered. Ten disorazole Z family members were purified from a large-scale fermentation of the myxobacterium Sorangium cellulosum So ce1875 and characterized by electrospray ionization–high-resolution mass spectrometry (ESI-HRMS), X-ray, nuclear magnetic resonance (NMR), and Mosher ester analysis. Disorazole Z compounds are characterized by the lack of one polyketide extension cycle, resulting in a shortened monomer in comparison to disorazole A, which finally forms a dimer in the bis-lactone core structure. In addition, an unprecedented modification of a geminal dimethyl group takes place to form a carboxylic acid methyl ester. The main component disorazole Z1 shows comparable activity in effectively killing cancer cells to disorazole A1 via binding to tubulin, which we show induces microtubule depolymerization, endoplasmic reticulum delocalization, and eventually apoptosis. The disorazole Z biosynthetic gene cluster (BGC) was identified and characterized from the alternative producer S. cellulosum So ce427 and compared to the known disorazole A BGC, followed by heterologous expression in the host Myxococcus xanthus DK1622. Pathway engineering by promoter substitution and gene deletion paves the way for detailed biosynthesis studies and efficient heterologous production of disorazole Z congeners. IMPORTANCE Microbial secondary metabolites are a prolific reservoir for the discovery of bioactive compounds, which prove to be privileged scaffolds for the development of new drugs such as antibacterial and small-molecule anticancer drugs. Consequently, the continuous discovery of novel bioactive natural products is of great importance for pharmaceutical research. Myxobacteria, especially Sorangium spp., which are known for their large genomes with yet-underexploited biosynthetic potential, are proficient producers of such secondary metabolites. From the fermentation broth of Sorangium cellulosum strain So ce1875, we isolated and characterized a family of natural products named disorazole Z, which showed potent anticancer activity. Further, we report on the biosynthesis and heterologous production of disorazole Z. These results can be stepping stones toward pharmaceutical development of the disorazole family of anticancer natural products for (pre)clinical studies. American Society for Microbiology 2023-06-15 /pmc/articles/PMC10434194/ /pubmed/37318329 http://dx.doi.org/10.1128/spectrum.00730-23 Text en Copyright © 2023 Gao 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
Gao, Yunsheng
Birkelbach, Joy
Fu, Chengzhang
Herrmann, Jennifer
Irschik, Herbert
Morgenstern, Bernd
Hirschfelder, Kerstin
Li, Ruijuan
Zhang, Youming
Jansen, Rolf
Müller, Rolf
The Disorazole Z Family of Highly Potent Anticancer Natural Products from Sorangium cellulosum: Structure, Bioactivity, Biosynthesis, and Heterologous Expression
title The Disorazole Z Family of Highly Potent Anticancer Natural Products from Sorangium cellulosum: Structure, Bioactivity, Biosynthesis, and Heterologous Expression
title_full The Disorazole Z Family of Highly Potent Anticancer Natural Products from Sorangium cellulosum: Structure, Bioactivity, Biosynthesis, and Heterologous Expression
title_fullStr The Disorazole Z Family of Highly Potent Anticancer Natural Products from Sorangium cellulosum: Structure, Bioactivity, Biosynthesis, and Heterologous Expression
title_full_unstemmed The Disorazole Z Family of Highly Potent Anticancer Natural Products from Sorangium cellulosum: Structure, Bioactivity, Biosynthesis, and Heterologous Expression
title_short The Disorazole Z Family of Highly Potent Anticancer Natural Products from Sorangium cellulosum: Structure, Bioactivity, Biosynthesis, and Heterologous Expression
title_sort disorazole z family of highly potent anticancer natural products from sorangium cellulosum: structure, bioactivity, biosynthesis, and heterologous expression
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10434194/
https://www.ncbi.nlm.nih.gov/pubmed/37318329
http://dx.doi.org/10.1128/spectrum.00730-23
work_keys_str_mv AT gaoyunsheng thedisorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT birkelbachjoy thedisorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT fuchengzhang thedisorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT herrmannjennifer thedisorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT irschikherbert thedisorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT morgensternbernd thedisorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT hirschfelderkerstin thedisorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT liruijuan thedisorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT zhangyouming thedisorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT jansenrolf thedisorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT mullerrolf thedisorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT gaoyunsheng disorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT birkelbachjoy disorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT fuchengzhang disorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT herrmannjennifer disorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT irschikherbert disorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT morgensternbernd disorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT hirschfelderkerstin disorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT liruijuan disorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT zhangyouming disorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT jansenrolf disorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression
AT mullerrolf disorazolezfamilyofhighlypotentanticancernaturalproductsfromsorangiumcellulosumstructurebioactivitybiosynthesisandheterologousexpression