Integrating Genomics, Bioinformatics, and Classical Genetics to Study the Effects of Recombination on Genome Evolution
Open Access
- 1 July 2002
- journal article
- research article
- Published by Oxford University Press (OUP) in Molecular Biology and Evolution
- Vol. 19 (7) , 1181-1197
- https://doi.org/10.1093/oxfordjournals.molbev.a004176
Abstract
This study presents compelling evidence that recombination significantly increases the silent GC content of a genome in a selectively neutral manner, resulting in a highly significant positive correlation between recombination and “GC3s” in the yeast Saccharomyces cerevisiae. Neither selection nor mutation can explain this relationship. A highly significant GC-biased mismatch repair system is documented for the first time in any member of the Kingdom Fungi. Much of the variation in the GC3s within yeast appears to result from GC-biased gene conversion. Evidence suggests that GC-biased mismatch repair exists in numerous organisms spanning six kingdoms. This transkingdom GC mismatch repair bias may have evolved in response to a ubiquitous AT mutational bias. A significant positive correlation between recombination and GC content is found in many of these same organisms, suggesting that the processes influencing the evolution of the yeast genome may be a general phenomenon. Nonrecombining regions of the genome and nonrecombining genomes would not be subject to this type of molecular drive. It is suggested that the low GC content characteristic of many nonrecombining genomes may be the result of three processes (1) a prevailing AT mutational bias, (2) random fixation of the most common types of mutation, and (3) the absence of the GC-biased gene conversion which, in recombining organisms, permits the reversal of the most common types of mutation. A model is proposed to explain the observation that introns, intergenic regions, and pseudogenes typically have lower GC content than the silent sites of corresponding open reading frames. This model is based on the observation that the greater the heterology between two sequences, the less likely it is that recombination will occur between them. According to this “Constraint” hypothesis, the formation and propagation of heteroduplex DNA is expected to occur, on average, more frequently within conserved coding and regulatory regions of the genome. In organisms possessing GC-biased mismatch repair, this would enhance the GC content of these regions through biased gene conversion. These findings have a number of important implications for the way we view genome evolution and suggest a new model for the evolution of sex.Keywords
This publication has 106 references indexed in Scilit:
- Initial sequencing and analysis of the human genomeNature, 2001
- Gapped BLAST and PSI-BLAST: a new generation of protein database search programsNucleic Acids Research, 1997
- Accelerated Deamination of Cytosine Residues in UV-Induced Cyclobutane Pyrimidine Dimers Leads to CC→TT TransitionsBiochemistry, 1996
- Genetic Recombination: Patterns in the genomeCurrent Biology, 1994
- Mismatch repair in mammalian cellsBioEssays, 1990
- Why the rate of silent codon substitutions is variable within a vertebrate's genomeJournal of Theoretical Biology, 1988
- Different base/base mispairs are corrected with different efficiencies and specificities in monkey kidney cellsCell, 1988
- Compositional constraints and genome evolutionJournal of Molecular Evolution, 1986
- Patterns of nucleotide substitution in pseudogenes and functional genesJournal of Molecular Evolution, 1982
- Molecular basis of base substitution hotspots in Escherichia coliNature, 1978