Remodeling of Yeast Genome Expression in Response to Environmental Changes
Top Cited Papers
- 1 February 2001
- journal article
- Published by American Society for Cell Biology (ASCB) in Molecular Biology of the Cell
- Vol. 12 (2), 323-337
- https://doi.org/10.1091/mbc.12.2.323
Abstract
We used genome-wide expression analysis to explore how gene expression in Saccharomyces cerevisiae is remodeled in response to various changes in extracellular environment, including changes in temperature, oxidation, nutrients, pH, and osmolarity. The results demonstrate that more than half of the genome is involved in various responses to environmental change and identify the global set of genes induced and repressed by each condition. These data implicate a substantial number of previously uncharacterized genes in these responses and reveal a signature common to environmental responses that involves ∼10% of yeast genes. The results of expression analysis with MSN2/MSN4 mutants support the model that the Msn2/Msn4 activators induce the common response to environmental change. These results provide a global description of the transcriptional response to environmental change and extend our understanding of the role of activators in effecting this response.Keywords
This publication has 73 references indexed in Scilit:
- The Transcriptional Response of Saccharomyces cerevisiae to Osmotic ShockJournal of Biological Chemistry, 2000
- Comprehensive Identification of Cell Cycle–regulated Genes of the YeastSaccharomyces cerevisiaeby Microarray HybridizationMolecular Biology of the Cell, 1998
- INTRACELLULAR SIGNALING FROM THE ENDOPLASMIC RETICULUM TO THE NUCLEUSAnnual Review of Cell and Developmental Biology, 1998
- Exploring the Metabolic and Genetic Control of Gene Expression on a Genomic ScaleScience, 1997
- The molecular defences against reactive oxygen species in yeastMolecular Microbiology, 1996
- The heat shock and ethanol stress responses of yeast exhibit extensive similarity and functional overlapFEMS Microbiology Letters, 1995
- Induction of heat, freezing and salt tolerance by heat and salt shock in Saccharomyces cerevisiaeMicrobiology, 1995
- Heat-shock proteins and stress tolerance in microorganismsCurrent Opinion in Genetics & Development, 1992
- An exonuclease protection assay reveals heat-shock element and TATA box DNA-binding proteins in crude nuclear extractsNature, 1985
- A drosophila RNA polymerase II transcription factor binds to the regulatory site of an hsp 70 geneCell, 1984