Amino acid composition and the evolutionary rates of protein-coding genes
- 1 August 1985
- journal article
- research article
- Published by Springer Nature in Journal of Molecular Evolution
- Vol. 22 (1) , 53-62
- https://doi.org/10.1007/bf02105805
Abstract
Summary Based on the rates of amino acid substitution for 60 mammalian genes of 50 codons or more, it is shown that the rate of amino acid substitution of a protein is correlated with its amino acid composition. In particular, the content of glycine residues is negatively correlated with the rate of amino acid substitution, and this content alone explains about 38% of the total variation in amino acid substitution rates among different protein families. The propensity of a polypeptide to evolve fast or slowly may be predicted from an index or indices of protein mutability directly derivable from the amino acid composition. The propensity of an amino acid to remain conserved during evolutionary times depends not so much on its being features prominently in active sites, but on its stability index, defined as the mean chemical distance [R. Grantham (1974) Science 185∶862–864] between the amino acid and its mutational derivatives produced by single-nucleotide substitutions. Functional constraints related to active and binding sites of proteins play only a minor role in determining the overall rate of amino acid substitution. The importance of amino acid composition in determining rates of substitution is illustrated with examples involving cytochrome c, cytochrome b5,ras-related genes, the calmodulin protein family, and fibrinopeptides.Keywords
This publication has 29 references indexed in Scilit:
- Mutations and the conformational stability of globular proteinsThe Science of Nature, 1983
- Patterns of nucleotide substitution in pseudogenes and functional genesJournal of Molecular Evolution, 1982
- Human leukocyte and fibroblast interferons are structurally relatedNature, 1980
- Evolutionary nucleotide replacements in DNANature, 1979
- Two types of amino acid substitutions in protein evolutionJournal of Molecular Evolution, 1979
- Evolutionary processes and evolutionary noise at the molecular levelJournal of Molecular Evolution, 1976
- The charge-state model of protein polymorphism in natural populationsJournal of Molecular Evolution, 1975
- Amino Acid Difference Formula to Help Explain Protein EvolutionScience, 1974
- Deleterious Mutations and Neutral SubstitutionsNature, 1971
- Relations between chemical structure and biological activity in peptidesJournal of Theoretical Biology, 1966