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PMID: 17959824 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, U.S. Gov't, Non-P.H.S.

Coordination of growth rate, cell cycle, stress response, and metabolic activity in yeast.

Molecular biology of the cell ·Vol. 19 ·No. 1 ·2008-01-00 ·Pages 352-67

Brauer MJ, Huttenhower C, Airoldi EM, Rosenstein R, Matese JC, Gresham D, Boer VM, Troyanskaya OG, Botstein D

Abstract

We studied the relationship between growth rate and genome-wide gene expression, cell cycle progression, and glucose metabolism in 36 steady-state continuous cultures limited by one of six different nutrients (glucose, ammonium, sulfate, phosphate, uracil, or leucine). The expression of more than one quarter of all yeast genes is linearly correlated with growth rate, independent of the limiting nutrient. The subset of negatively growth-correlated genes is most enriched for peroxisomal functions, whereas positively correlated genes mainly encode ribosomal functions. Many (not all) genes associated with stress response are strongly correlated with growth rate, as are genes that are periodically expressed under conditions of metabolic cycling. We confirmed a linear relationship between growth rate and the fraction of the cell population in the G0/G1 cell cycle phase, independent of limiting nutrient. Cultures limited by auxotrophic requirements wasted excess glucose, whereas those limited on phosphate, sulfate, or ammonia did not; this phenomenon (reminiscent of the "Warburg effect" in cancer cells) was confirmed in batch cultures. Using an aggregate of gene expression values, we predict (in both continuous and batch cultures) an "instantaneous growth rate." This concept is useful in interpreting the system-level connections among growth rate, metabolism, stress, and the cell cycle.

MeSH Terms
Cell Cycle Cluster Analysis Culture Media Ethanol/metabolism Food Gene Expression Regulation, Fungal Genes, Fungal Glucose/metabolism Models, Biological Regression Analysis Saccharomyces cerevisiae/cytology,genetics,growth & development,metabolism Transcription, Genetic
Chemicals
Culture Media Ethanol Glucose
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Brauer Matthew J
Lewis-Sigler Institute for Integrative Genomics and Department of Molecular Biology, Princeton University, Princeton, NJ 08544, USA.
Huttenhower Curtis
Airoldi Edoardo M
Rosenstein Rachel
Matese John C
Gresham David
Boer Viktor M
Troyanskaya Olga G
Botstein David
References (54)
54 references, click to expand
  1. Growth-rate regulated genes have profound impact on interpretation of transcriptome profiling in Saccharomyces cerevisiae.
    Genome Biol. 2006;7(11):R107 PMID: 17105650
  2. Nutrient-specific effects in the coordination of cell growth with cell division in continuous cultures of Saccharomyces cerevisiae.
    Arch Microbiol. 2004 Oct;182(4):326-30 PMID: 15349714
  3. Saccharomyces cerevisiae cell cycle.
    Bacteriol Rev. 1974 Jun;38(2):164-98 PMID: 4599449
  4. Continuous culture--making a comeback?
    Microbiology (Reading). 2005 Oct;151(Pt 10):3153-3159 PMID: 16207900
  5. Cluster analysis and display of genome-wide expression patterns.
    Proc Natl Acad Sci U S A. 1998 Dec 8;95(25):14863-8 PMID: 9843981
  6. Genomic expression programs in the response of yeast cells to environmental changes.
    Mol Biol Cell. 2000 Dec;11(12):4241-57 PMID: 11102521
  7. Cell cycle phase expansion in nitrogen-limited cultures of Saccharomyces cerevisiae.
    J Cell Biol. 1980 Apr;85(1):96-107 PMID: 6988443
  8. On respiratory impairment in cancer cells.
    Science. 1956 Aug 10;124(3215):269-70 PMID: 13351639
  9. Nutritional homeostasis in batch and steady-state culture of yeast.
    Mol Biol Cell. 2004 Sep;15(9):4089-104 PMID: 15240820
  10. Autophagy in organelle homeostasis: peroxisome turnover.
    Mol Aspects Med. 2006 Oct-Dec;27(5-6):483-94 PMID: 16973210
  11. SCEPTRANS: an online tool for analyzing periodic transcription in yeast.
    Bioinformatics. 2007 Jun 15;23(12):1559-61 PMID: 17400726
  12. Missing value estimation methods for DNA microarrays.
    Bioinformatics. 2001 Jun;17(6):520-5 PMID: 11395428
  13. Restriction of DNA replication to the reductive phase of the metabolic cycle protects genome integrity.
    Science. 2007 Jun 29;316(5833):1916-9 PMID: 17600220
  14. How cells coordinate growth and division.
    Curr Biol. 2004 Dec 14;14(23):R1014-27 PMID: 15589139
  15. Growth rate and cell size modulate the synthesis of, and requirement for, G1-phase cyclins at start.
    Mol Cell Biol. 2004 Dec;24(24):10802-13 PMID: 15572683
  16. Description of the chemostat.
    Science. 1950 Dec 15;112(2920):715-6 PMID: 14787503
  17. The TOR signalling network from yeast to man.
    Int J Biochem Cell Biol. 2006;38(9):1476-81 PMID: 16647875
  18. The ins and outs of peroxisomes: co-ordination of membrane transport and peroxisomal metabolism.
    Biochim Biophys Acta. 2006 Dec;1763(12):1527-40 PMID: 17010456
  19. Peroxisomal disorders: the single peroxisomal enzyme deficiencies.
    Biochim Biophys Acta. 2006 Dec;1763(12):1707-20 PMID: 17055078
  20. GO::TermFinder--open source software for accessing Gene Ontology information and finding significantly enriched Gene Ontology terms associated with a list of genes.
    Bioinformatics. 2004 Dec 12;20(18):3710-5 PMID: 15297299
  21. Cell growth control: little eukaryotes make big contributions.
    Oncogene. 2006 Oct 16;25(48):6392-415 PMID: 17041625
  22. Gene ontology: tool for the unification of biology. The Gene Ontology Consortium.
    Nat Genet. 2000 May;25(1):25-9 PMID: 10802651
  23. Changes in carbohydrate composition and trehalase-activity during the budding cycle of Saccharomyces cerevisiae.
    Arch Mikrobiol. 1969;64(4):396-407 PMID: 4916776
  24. Genome-wide analysis of mRNA stability using transcription inhibitors and microarrays reveals posttranscriptional control of ribosome biogenesis factors.
    Mol Cell Biol. 2004 Jun;24(12):5534-47 PMID: 15169913
  25. Metabolic cycle, cell cycle, and the finishing kick to Start.
    Genome Biol. 2006;7(4):107 PMID: 16677426
  26. The genome-wide transcriptional responses of Saccharomyces cerevisiae grown on glucose in aerobic chemostat cultures limited for carbon, nitrogen, phosphorus, or sulfur.
    J Biol Chem. 2003 Jan 31;278(5):3265-74 PMID: 12414795
  27. Energetics of the budding cycle of Saccharomyces cerevisiae during glucose limited aerobic growth.
    Arch Mikrobiol. 1969;66(4):289-303 PMID: 5384632
  28. Cancer's molecular sweet tooth and the Warburg effect.
    Cancer Res. 2006 Sep 15;66(18):8927-30 PMID: 16982728
  29. Logic of the yeast metabolic cycle: temporal compartmentalization of cellular processes.
    Science. 2005 Nov 18;310(5751):1152-8 PMID: 16254148
  30. Singular value decomposition for genome-wide expression data processing and modeling.
    Proc Natl Acad Sci U S A. 2000 Aug 29;97(18):10101-6 PMID: 10963673
  31. The Forkhead transcription factor Hcm1 regulates chromosome segregation genes and fills the S-phase gap in the transcriptional circuitry of the cell cycle.
    Genes Dev. 2006 Aug 15;20(16):2266-78 PMID: 16912276
  32. An interlaboratory comparison of physiological and genetic properties of four Saccharomyces cerevisiae strains.
    Enzyme Microb Technol. 2000 Jun 1;26(9-10):706-714 PMID: 10862876
  33. Enzymic analysis of the crabtree effect in glucose-limited chemostat cultures of Saccharomyces cerevisiae.
    Appl Environ Microbiol. 1989 Feb;55(2):468-77 PMID: 2566299
  34. Genomic expression responses to DNA-damaging agents and the regulatory role of the yeast ATR homolog Mec1p.
    Mol Biol Cell. 2001 Oct;12(10):2987-3003 PMID: 11598186
  35. Autophagy, cytoplasm-to-vacuole targeting pathway, and pexophagy in yeast and mammalian cells.
    Annu Rev Biochem. 2000;69:303-42 PMID: 10966461
  36. Homeostatic adjustment and metabolic remodeling in glucose-limited yeast cultures.
    Mol Biol Cell. 2005 May;16(5):2503-17 PMID: 15758028
  37. Comprehensive identification of cell cycle-regulated genes of the yeast Saccharomyces cerevisiae by microarray hybridization.
    Mol Biol Cell. 1998 Dec;9(12):3273-97 PMID: 9843569
  38. Stress resistance of yeast cells is largely independent of cell cycle phase.
    Yeast. 1993 Jan;9(1):33-42 PMID: 8442385
  39. ACE2 is required for daughter cell-specific G1 delay in Saccharomyces cerevisiae.
    Proc Natl Acad Sci U S A. 2003 Sep 2;100(18):10275-80 PMID: 12937340
  40. A genomewide oscillation in transcription gates DNA replication and cell cycle.
    Proc Natl Acad Sci U S A. 2004 Feb 3;101(5):1200-5 PMID: 14734811
  41. Fatty acid metabolism in Saccharomyces cerevisiae.
    Cell Mol Life Sci. 2003 Sep;60(9):1838-51 PMID: 14523547
  42. A genome-wide transcriptional analysis of the mitotic cell cycle.
    Mol Cell. 1998 Jul;2(1):65-73 PMID: 9702192
  43. Genetic control of the cell division cycle in yeast.
    Science. 1974 Jan 11;183(4120):46-51 PMID: 4587263
  44. A dynamic transcriptional network communicates growth potential to ribosome synthesis and critical cell size.
    Genes Dev. 2004 Oct 15;18(20):2491-505 PMID: 15466158
  45. Transcriptional regulatory networks and the yeast cell cycle.
    Curr Opin Cell Biol. 2002 Dec;14(6):676-83 PMID: 12473339
  46. The economics of ribosome biosynthesis in yeast.
    Trends Biochem Sci. 1999 Nov;24(11):437-40 PMID: 10542411
  47. Coordinated regulation of growth genes in Saccharomyces cerevisiae.
    Cell Cycle. 2007 May 15;6(10):1210-9 PMID: 17495542
  48. Cyclin Cln3 is retained at the ER and released by the J chaperone Ydj1 in late G1 to trigger cell cycle entry.
    Mol Cell. 2007 Jun 8;26(5):649-62 PMID: 17560371
  49. Multiple levels of cyclin specificity in cell-cycle control.
    Nat Rev Mol Cell Biol. 2007 Feb;8(2):149-60 PMID: 17245415
  50. Regulation of ribosome biosynthesis in Escherichia coli and Saccharomyces cerevisiae: diversity and common principles.
    J Bacteriol. 1999 Nov;181(22):6857-64 PMID: 10559149
  51. Exploring the metabolic and genetic control of gene expression on a genomic scale.
    Science. 1997 Oct 24;278(5338):680-6 PMID: 9381177
  52. Autoregulation in the biosynthesis of ribosomes.
    Mol Cell Biol. 2003 Jan;23(2):699-707 PMID: 12509467
  53. Growth control of the eukaryote cell: a systems biology study in yeast.
    J Biol. 2007;6(2):4 PMID: 17439666
  54. Control of cell division in Saccharomyces cerevisiae by methionyl-tRNA.
    Proc Natl Acad Sci U S A. 1976 May;73(5):1664-8 PMID: 775494
Article Info
Journal
Molecular biology of the cell
Abbr.
Mol Biol Cell
ISSN
1939-4586
Published
2008-01-00
Epub
2007-00-24
Pages
352-67
Language
English
Region
United States
NLM ID
9201390
PMCID
PMC2174172
Subset
IM
Grants
NIGMS NIH HHS · R01 GM046406 · United States
NIGMS NIH HHS · GM-071508 · United States
NHGRI NIH HHS · F32 HG002649 · United States
NIGMS NIH HHS · R37 GM046406 · United States
NIGMS NIH HHS · R01 GM107466 · United States
NIGMS NIH HHS · P50 GM071508 · United States
NIGMS NIH HHS · R01 GM071966 · United States
NHGRI NIH HHS · HG-002649 · United States
NIGMS NIH HHS · GM-46406 · United States
NIGMS NIH HHS · R01 GM-071966 · United States
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