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Quantitative analysis of fission yeast transcriptomes and proteomes in proliferating and quiescent cells.


ABSTRACT: Data on absolute molecule numbers will empower the modeling, understanding, and comparison of cellular functions and biological systems. We quantified transcriptomes and proteomes in fission yeast during cellular proliferation and quiescence. This rich resource provides the first comprehensive reference for all RNA and most protein concentrations in a eukaryote under two key physiological conditions. The integrated data set supports quantitative biology and affords unique insights into cell regulation. Although mRNAs are typically expressed in a narrow range above 1 copy/cell, most long, noncoding RNAs, except for a distinct subset, are tightly repressed below 1 copy/cell. Cell-cycle-regulated transcription tunes mRNA numbers to phase-specific requirements but can also bring about more switch-like expression. Proteins greatly exceed mRNAs in abundance and dynamic range, and concentrations are regulated to functional demands. Upon transition to quiescence, the proteome changes substantially, but, in stark contrast to mRNAs, proteins do not uniformly decrease but scale with cell volume.

SUBMITTER: Marguerat S 

PROVIDER: S-EPMC3482660 | biostudies-literature | 2012 Oct

REPOSITORIES: biostudies-literature

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Quantitative analysis of fission yeast transcriptomes and proteomes in proliferating and quiescent cells.

Marguerat Samuel S   Schmidt Alexander A   Codlin Sandra S   Chen Wei W   Aebersold Ruedi R   Bähler Jürg J  

Cell 20121001 3


Data on absolute molecule numbers will empower the modeling, understanding, and comparison of cellular functions and biological systems. We quantified transcriptomes and proteomes in fission yeast during cellular proliferation and quiescence. This rich resource provides the first comprehensive reference for all RNA and most protein concentrations in a eukaryote under two key physiological conditions. The integrated data set supports quantitative biology and affords unique insights into cell regu  ...[more]

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