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Coordination of Growth Rate, Cell Cycle, Stress Response, and Metabolic Activity in Yeast

Molecular Biology of the Cell · 2007 · Vol. 19(1) · pp. 352–367
Matthew J. BrauerCurtis HuttenhowerEdoardo M. AiroldiRachel K. RosensteinJohn C. MateseDavid GreshamViktor M. BoerOlga G. TroyanskayaDavid Botstein

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.

Fungal and yeast genetics researchMicrobial Metabolic Engineering and BioproductionViral Infectious Diseases and Gene Expression in InsectsBiologyCell cycleYeastGeneCell growthBiochemistrySaccharomyces cerevisiaeGrowth rateMetabolismPopulation

MeSH terms

EthanolCell CycleCulture MediaFoodGenes, FungalGlucoseModels, BiologicalRegression AnalysisSaccharomyces cerevisiaeTranscription, GeneticGene Expression Regulation, FungalCluster Analysis

Funding

  • National Science Foundation
  • National Institutes of Health
  • National Institute of General Medical Sciences
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592
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References
The molecular biology of the yeast saccharomyces: Life cycle and inheritance
Trends in Biochemical Sciences · 1982 · 1,361 citations
The economics of ribosome biosynthesis in yeast
Trends in Biochemical Sciences · 1999 · 1,959 citations
Cancer's Molecular Sweet Tooth and the Warburg Effect
Cancer Research · 2006 · 1,214 citations
Missing value estimation methods for DNA microarrays
Bioinformatics · 2001 · 4,180 citations
Gene Ontology: tool for the unification of biology
Nature Genetics · 2000 · 43,975 citations
Controlling the False Discovery Rate: A Practical and Powerful Approach to Multiple Testing
Journal of the Royal Statistical Society Series B (Statistical Methodology) · 1995 · 106,483 citations
Genomic Expression Programs in the Response of Yeast Cells to Environmental Changes
Molecular Biology of the Cell · 2000 · 4,901 citations
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