PLoS Genetics · 2015 · 198 citations · 73 references
Mrna LevelsMolecular BiologyGene Regulatory NetworkTranscriptional RegulationCellular Regulatory MechanismYeastRna ProcessingProtein LevelsPost-transcriptional ProcessesExperimental Noise RevealsGene ExpressionTranscription RegulationBiologyMrna TranscriptionNatural SciencesGene RegulationRegulatory Network ModellingSystems BiologyMedicine
Cells respond to their environment by modulating protein levels through mRNA transcription and post-transcriptional control. Modest observed correlations between global steady-state mRNA and protein measurements have been interpreted as evidence that mRNA levels determine roughly 40% of the variation in protein levels, indicating dominant post-transcriptional effects. However, the techniques underlying these conclusions, such as correlation and regression, yield biased results when data are noisy, missing systematically, and collinear---properties of mRNA and protein measurements---which motivated us to revisit this subject. Noise-robust analyses of 24 studies of budding yeast reveal that mRNA levels explain more than 85% of the variation in steady-state protein levels. Protein levels are not proportional to mRNA levels, but rise much more rapidly. Regulation of translation suffices to explain this nonlinear effect, revealing post-transcriptional amplification of, rather than competition with, transcriptional signals. These results substantially revise widely credited models of protein-level regulation, and introduce multiple noise-aware approaches essential for proper analysis of many biological phenomena.
73
R: A Language and Environment for Statistical Computing
R Core Team · 2000 · 352.8K citations · Full text
Global quantification of mammalian gene expression control
Björn Schwanhäußer, Dorothea Busse, Na Li et al. · Nature · 2011 · 6.7K citations
Systems Biology, Protein Expression, Global Quantification +4