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de Groot MJ, et al.  (2007) Quantitative proteomics and transcriptomics of anaerobic and aerobic yeast cultures reveals post-transcriptional regulation of key cellular processes. Microbiology 153(Pt 11):3864-3878

Abstract: Saccharomyces cerevisiae is unique among yeasts in its ability to grow rapidly in the complete absence of oxygen. S. cerevisiae is therefore an ideal eukaryotic model to study physiological adaptation to anaerobiosis. Recent transcriptome analyses have identified hundreds of genes that are transcriptionally regulated by oxygen availability but the relevance of this cellular response has not been systematically investigated at the key control level of the proteome. Therefore, the proteomic response of S. cerevisiae to anaerobiosis was investigated using metabolic stable-isotope labelling in aerobic and anaerobic glucose-limited chemostat cultures, followed by relative quantification of protein expression. Using independent replicate cultures and stringent statistical filtering, a robust dataset of 474 quantified proteins was generated, of which 249 showed differential expression levels. While some of these changes were consistent with previous transcriptome studies, many of the responses of S. cerevisiae to oxygen availability were, to our knowledge, previously unreported. Comparison of transcriptomes and proteomes from identical cultivations yielded strong evidence for post-transcriptional regulation of key cellular processes, including glycolysis, amino-acyl-tRNA synthesis, purine nucleotide synthesis and amino acid biosynthesis. The use of chemostat cultures provided well-controlled and reproducible culture conditions, which are essential for generating robust datasets at different cellular information levels. Integration of transcriptome and proteome data led to new insights into the physiology of anaerobically growing yeast that would not have been apparent from differential analyses at either the mRNA or protein level alone, thus illustrating the power of multi-level studies in yeast systems biology.

Status: Published Type: Journal Article PubMed ID: 17975095

Topics addressed in this paper

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ACO1 ACO2 ACS1 ACS2 ADE13 ADE17 ADE2 ADE3 ADE4 ADE5,7
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Genomic expression study yg ball
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ADE6 ADH1 ADH2 ADH5 AGX1 ALA1 ALD4 ARG1 ARG4 ARO4
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ARO8 ASC1 ASN1 ASN2 ATP20 ATP4 ATP5 ATP7 CDC19 CDC48
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Topics Genes linked to topics (#31 - 40 )
CMK2 COX12 COX13 COX2 COX4 COX5A COX6 CPA2 CYB2 CYC1
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CYT1 DAK1 DED81 DLD3 DPS1 EMI2 ENO1 ENO2 ERG1 ERG11
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ERG2 FAA4 FDH2 FRD1 FRS2 FUM1 GDH3 GLN1 GPD2 GPM1
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Topics Genes linked to topics (#61 - 70 )
GRE2 GRR1 GRS1 GUS1 GUT2 HEM13 HIS4 HIS7 HOM2 HOM6
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Topics Genes linked to topics (#71 - 80 )
HSP82 HXK1 HXK2 ICL2 IDP2 ILS1 ILV2 ILV3 ILV5 IMA1
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Topics Genes linked to topics (#81 - 90 )
IMD1 IMD2 KAR2 KGD2 LEU1 LEU2 LSC1 LSC2 LYS4 MAE1
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Topics Genes linked to topics (#91 - 100 )
MAL12 MDH3 MET10 MET17 MET6 OYE2 PDC1 PDC5 PET9 PFK1
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PFK2 PGI1 PGM1 PGM2 PHO88 POX1 PYC1 QCR2 QCR6 QCR7
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Topics Genes linked to topics (#111 - 120 )
RHR2 RIB3 RIP1 RNR4 SAH1 SAM2 SDH2 SER1 SER3 SER33
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Topics Genes linked to topics (#121 - 130 )
SES1 SHM2 SSB1 SSB2 SSC1 STM1 SUC2 TDH1 TDH2 THR4
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Topics Genes linked to topics (#131 - 140 )
THS1 TKL1 TPS1 TRP2 TRP5 VAS1 YDR341C YHR020W YPL276W YTA12
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