A Single Determinant Dominates the Rate of Yeast Protein Evolution
Open Access
- 19 October 2005
- journal article
- research article
- Published by Oxford University Press (OUP) in Molecular Biology and Evolution
- Vol. 23 (2) , 327-337
- https://doi.org/10.1093/molbev/msj038
Abstract
A gene's rate of sequence evolution is among the most fundamental evolutionary quantities in common use, but what determines evolutionary rates has remained unclear. Here, we carry out the first combined analysis of seven predictors (gene expression level, dispensability, protein abundance, codon adaptation index, gene length, number of protein-protein interactions, and the gene's centrality in the interaction network) previously reported to have independent influences on protein evolutionary rates. Strikingly, our analysis reveals a single dominant variable linked to the number of translation events which explains 40-fold more variation in evolutionary rate than any other, suggesting that protein evolutionary rate has a single major determinant among the seven predictors. The dominant variable explains nearly half the variation in the rate of synonymous and protein evolution. We show that the two most commonly used methods to disentangle the determinants of evolutionary rate, partial correlation analysis and ordinary multivariate regression, produce misleading or spurious results when applied to noisy biological data. We overcome these difficulties by employing principal component regression, a multivariate regression of evolutionary rate against the principal components of the predictor variables. Our results support the hypothesis that translational selection governs the rate of synonymous and protein sequence evolution in yeast.Keywords
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This publication has 42 references indexed in Scilit:
- Significant Impact of Protein Dispensability on the Instantaneous Rate of Protein EvolutionMolecular Biology and Evolution, 2005
- Adjusting for Selection on Synonymous Sites in Estimates of Evolutionary DistanceMolecular Biology and Evolution, 2004
- Effects of Gene Expression on Molecular Evolution in Arabidopsis thaliana and Arabidopsis lyrataMolecular Biology and Evolution, 2004
- Evidence for dynamically organized modularity in the yeast protein–protein interaction networkNature, 2004
- An Analysis of Determinants of Amino Acids Substitution Rates in Bacterial ProteinsMolecular Biology and Evolution, 2004
- Rate of Protein Evolution Versus Fitness Effect of Gene DeletionMolecular Biology and Evolution, 2003
- Rate of evolution and gene dispensabilityNature, 2003
- Rate of evolution and gene dispensabilityNature, 2003
- Biased Estimation in Regression: An Evaluation Using Mean Squared ErrorJournal of the American Statistical Association, 1977