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PMID: 20182427 Published · ppublish English Journal Article

Compensatory evolution in mitochondrial tRNAs navigates valleys of low fitness.

Nature ·Vol. 464 ·No. 7286 ·2010-03-11 ·Pages 279-82

Meer MV, Kondrashov AS, Artzy-Randrup Y, Kondrashov FA

Abstract

A long-standing controversy in evolutionary biology is whether or not evolving lineages can cross valleys on the fitness landscape that correspond to low-fitness genotypes, which can eventually enable them to reach isolated fitness peaks. Here we study the fitness landscapes traversed by switches between different AU and GC Watson-Crick nucleotide pairs at complementary sites of mitochondrial transfer RNA stem regions in 83 mammalian species. We find that such Watson-Crick switches occur 30-40 times more slowly than pairs of neutral substitutions, and that alleles corresponding to GU and AC non-Watson-Crick intermediate states segregate within human populations at low frequencies, similar to those of non-synonymous alleles. Substitutions leading to a Watson-Crick switch are strongly correlated, especially in mitochondrial tRNAs encoded on the GT-nucleotide-rich strand of the mitochondrial genome. Using these data we estimate that a typical Watson-Crick switch involves crossing a fitness valley of a depth of about 10(-3) or even about 10(-2), with AC intermediates being slightly more deleterious than GU intermediates. This compensatory evolution must proceed through rare intermediate variants that never reach fixation. The ubiquitous nature of compensatory evolution in mammalian mitochondrial tRNAs and other molecules implies that simultaneous fixation of two alleles that are individually deleterious may be a common phenomenon at the molecular level.

MeSH Terms
Animals Evolution, Molecular Humans Mammals/genetics,physiology Mutation/genetics Polymorphism, Genetic RNA/genetics RNA, Mitochondrial RNA, Transfer/genetics
Chemicals
RNA, Mitochondrial RNA RNA, Transfer
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Meer Margarita V
Bioinformatics and Genomics Programme, Centre for Genomic Regulation, C/Dr Aiguader 88, Barcelona Biomedical Research Park Building, 08003 Barcelona, Spain.
Kondrashov Alexey S
Artzy-Randrup Yael
Kondrashov Fyodor A
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Article Info
Journal
Nature
Abbr.
Nature
ISSN
1476-4687
Published
2010-03-11
Epub
2010-00-24
Pages
279-82
Language
English
Region
England
NLM ID
0410462
Subset
IM
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