Exploiting the genome sequence of Streptomyces nodosus for enhanced antibiotic production

Applied Microbiology and Biotechnology
2016.0

Abstract

The genome of the amphotericin producer Streptomyces nodosus was sequenced. A single scaffold of 7,714,110 bp was obtained. Biosynthetic genes were identified for several natural products including polyketides, peptides, siderophores and terpenes. The majority of these clusters specified known compounds. Most were silent or expressed at low levels and unlikely to compete with amphotericin production. Biosynthesis of a skyllamycin analogue was activated by introducing expression plasmids containing either a gene for a LuxR transcriptional regulator or genes for synthesis of the acyl moiety of the lipopeptide. In an attempt to boost amphotericin production, genes for acyl CoA carboxylases, a phosphopantetheinyl transferase and the AmphRIV transcriptional activator were overexpressed, and the effects on yields were investigated. This study provides the groundwork for metabolic engineering of S. nodosus strains to produce high yields of amphotericin analogues.

Knowledge Graph

Similar Paper

Exploiting the genome sequence of Streptomyces nodosus for enhanced antibiotic production
Applied Microbiology and Biotechnology 2016.0
Exploiting the genome sequence of Streptomyces nodosus for enhanced antibiotic production
Applied Microbiology and Biotechnology 2016.0
Transcriptional regulation and increased production of asukamycin in engineered Streptomyces nodosus subsp. asukaensis strains
Applied Microbiology and Biotechnology 2012.0
Phosphomannose isomerase and phosphomannomutase gene disruptions in Streptomyces nodosus: Impact on amphotericin biosynthesis and implications for glycosylation engineering
Metabolic Engineering 2009.0
High frequency transformation of the Amphotericin-producing bacterium Streptomyces nodosus
Journal of Microbiological Methods 2003.0
Genome Engineering Approaches to Improve Nosokomycin A Production by Streptomyces ghanaensis B38.3
Indian Journal of Microbiology 2019.0
Identification of a bioactive 51-membered macrolide complex by activation of a silent polyketide synthase in <i>Streptomyces ambofaciens</i>
Proceedings of the National Academy of Sciences 2011.0
Uncovering production of specialized metabolites by Streptomyces argillaceus: Activation of cryptic biosynthesis gene clusters using nutritional and genetic approaches
PLOS ONE 2018.0
Uncovering production of specialized metabolites by Streptomyces argillaceus: Activation of cryptic biosynthesis gene clusters using nutritional and genetic approaches
PLOS ONE 2018.0
Activating a Cryptic Ansamycin Biosynthetic Gene Cluster To Produce Three New Naphthalenic Octaketide Ansamycins with <i>n</i>-Pentyl and <i>n</i>-Butyl Side Chains
Organic Letters 2015.0