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Dikicioglu D, et al.  (2011) How yeast re-programmes its transcriptional profile in response to different nutrient impulses. BMC Syst Biol 5(1):148

Abstract: ABSTRACT: BACKGROUND: A microorganism is able to adapt to changes in its physicochemical or nutritional environment and this is crucial for its survival. The yeast, Saccharomyces cerevisiae, has developed mechanisms to respond to such environmental changes in a rapid and effective manner; such responses may demand a widespread re-programming of gene activity. The dynamics of the re-organization of the cellular activities of S. cerevisiae in response to the sudden and transient removal of either carbon or nitrogen limitation has been studied by following both the short- and long-term changes in yeast's transcriptomic profiles. RESULTS: The study, which spans timescales from seconds to hours, has revealed the hierarchy of metabolic and genetic regulatory switches that allow yeast to adapt to, and recover from, a pulse of a previously limiting nutrient. At the transcriptome level, a glucose impulse evoked significant changes in the expression of genes concerned with glycolysis, carboxylic acid metabolism, oxidative phosphorylation, and nucleic acid and sulphur metabolism. In ammonium-limited cultures, an ammonium impulse resulted in the significant changes in the expression of genes involved in nitrogen metabolism and ion transport. Although both perturbations evoked significant changes in the expression of genes involved in the machinery and process of protein synthesis, the transcriptomic response was delayed and less complex in the case of an ammonium impulse. Analysis of the regulatory events by two different system-level, network-based approaches provided further information about dynamic organization of yeast cells as a response to a nutritional change. CONCLUSIONS: The study provided important information on the temporal organization of transcriptomic organization and underlying regulatory events as a response to both carbon and nitrogen impulse. It has also revealed the importance of a long-term dynamic analysis of the response to the relaxation of a nutritional limitation to understand the molecular basis of the cells' dynamic behaviour.

Status: Epub ahead of print Type: PubMed ID: 21943358

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Topics Topics not linked to Genes Genes linked to topics (#1 - 10 )
ADH2 ALD4 ARG1 CIT2 CPA1 CPA2 CTS1 CYS4 ENO2 FPR1
Additional Literature blue ball blue ball blue ball blue ball blue ball blue ball blue ball blue ball blue ball blue ball
Cell Growth and Metabolism yg ball
Computational analysis yg ball
Genomic expression study yg ball
Omics yg ball
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RNA Levels and Processing blue ball blue ball blue ball blue ball blue ball blue ball blue ball blue ball blue ball blue ball
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Topics Genes linked to topics (#11 - 20 )
GCR2 HAP2 HMS1 HOM3 HXT2 HXT4 HXT7 IDP2 LYS20 LYS21
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Regulation of blue ball blue ball blue ball blue ball blue ball blue ball blue ball
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RNA Levels and Processing blue ball blue ball blue ball blue ball blue ball blue ball blue ball
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Topics Genes linked to topics (#21 - 30 )
LYS9 MGA1 MSN1 MSN2 MSN4 MTH1 PFK1 PFK2 PHD1 PYC1
Additional Literature blue ball blue ball blue ball blue ball blue ball blue ball blue ball blue ball blue ball blue ball
Regulation of blue ball blue ball blue ball blue ball
Regulatory Role blue ball blue ball blue ball blue ball blue ball blue ball
RNA Levels and Processing blue ball blue ball blue ball blue ball
Transcription blue ball blue ball blue ball blue ball
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Topics Genes linked to topics (#31 - 35 )
PYC2 SAM1 SWI4 TKL1 UME6
Additional Literature blue ball blue ball blue ball blue ball blue ball
Regulation of blue ball blue ball blue ball
Regulatory Role blue ball blue ball
RNA Levels and Processing blue ball blue ball blue ball
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