Systems biology of antibiotic production by microorganisms
- 30 May 2007
- journal article
- review article
- Published by Royal Society of Chemistry (RSC) in Natural Product Reports
- Vol. 24 (6) , 1262-1287
- https://doi.org/10.1039/b617765b
Abstract
Covering: 1995 to 2006 The synthesis of secondary metabolites by microorganisms, specifically antibiotics, is of great scientific and economic importance. The onset (control and regulation) of secondary metabolite formation has and still is intriguing scientists both in industry and academia. Despite many studies, there is little known about the molecular mechanisms underlying the regulation of secondary metabolism. With the recent developments in genomics and further development of advanced post-genomic techniques, it will be possible to apply a more holistic analysis to the regulation of antibiotic production in microorganisms. Here we review current knowledge about the control and regulation of secondary metabolites, with a focus on antibiotics. We will also review developments in the genomics of antibiotic-producing microorganisms, and discuss the use of systems biology for gaining a better understanding of the networks involved in regulation of antibiotic production.Keywords
This publication has 264 references indexed in Scilit:
- Systems biology as a foundation for genome-scale synthetic biologyCurrent Opinion in Biotechnology, 2006
- A framework to analyze multiple time series data: A case study with Streptomyces coelicolorJournal of Industrial Microbiology & Biotechnology, 2005
- Combinatorial biosynthesis of lipopeptide antibiotics in Streptomyces roseosporusJournal of Industrial Microbiology & Biotechnology, 2005
- From genomes to in silico cells via metabolic networksCurrent Opinion in Biotechnology, 2005
- Regional organization of gene expression in Streptomyces coelicolorGene, 2005
- Structure-Based Engineering of E. coli Galactokinase as a First Step toward In Vivo GlycorandomizationChemistry & Biology, 2005
- AcFKH1, a novel member of the forkhead family, associates with the RFX transcription factor CPCR1 in the cephalosporin C-producing fungus Acremonium chrysogenumGene, 2004
- Optknock: A bilevel programming framework for identifying gene knockout strategies for microbial strain optimizationBiotechnology & Bioengineering, 2003
- Rapid engineering of polyketide overproduction by gene transfer to industrially optimized strainsJournal of Industrial Microbiology & Biotechnology, 2003
- δ-(L-α-Aminoadipyl)-L-cysteinyl-D-valine synthetase is a rate limiting enzyme for penicillin production in Aspergillus nidulansMolecular Genetics and Genomics, 1996