Yeast Genome-Wide Expression Analysis Identifies a Strong Ergosterol and Oxidative Stress Response during the Initial Stages of an Industrial Lager Fermentation
Yeast Genome-Wide Expression Analysis Identifies a Strong Ergosterol and Oxidative Stress Response during the Initial Stages of an Industrial Lager Fermentation
ABSTRACTGenome-wide expression analysis of an industrial strain ofSaccharomyces cerevisiaeduring the initial stages of an industrial lager fermentation identified a strong response from genes involved in the biosynthesis of ergosterol and oxidative stress protection. The induction of theERGgenes was confirmed by Northern analysis and was found to be complemented by a rapid accumulation of ergosterol over the initial 6-h fermentation period. From a test of the metabolic activity of deletion mutants in the ergosterol biosynthesis pathway, it was found that ergosterol is an important factor in restoring the fermentative capacity of the cell after storage. Additionally, similarERG10andTRR1gene expression patterns over the initial 24-h fermentation period highlighted a possible interaction between ergosterol biosynthesis and the oxidative stress response. Further analysis showed thatergmutants producing altered sterols were highly sensitive to oxidative stress-generating compounds. Here we show that genome-wide expression analysis can be used in the commercial environment and was successful in identifying environmental conditions that are important in industrial yeast fermentation.
- University of Queensland Australia
- University of Queensland Australia
- Griffith University Australia
- UNSW Sydney Australia
Osmolar Concentration, Saccharomyces cerevisiae, Biosynthesis, Yeast, Kinetics, Oxidative Stress, Genes, Ergosterol, Gene Expression Regulation, Fungal, Fermentation, Genome, Fungal
Osmolar Concentration, Saccharomyces cerevisiae, Biosynthesis, Yeast, Kinetics, Oxidative Stress, Genes, Ergosterol, Gene Expression Regulation, Fungal, Fermentation, Genome, Fungal
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