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The probability of genetic parallelism and convergence in natural populations
by
Schluter, Dolph
, Conte, Gina L.
, Arnegard, Matthew E.
, Peichel, Catherine L.
in
Adaptation, Biological
/ Biological Evolution
/ Biological taxonomies
/ Convergent Evolution
/ Environment
/ Evolution
/ Evolutionary genetics
/ Genetic Biases And Constraints
/ Genetic Convergence
/ Genetic mutation
/ Genetic Parallelism
/ Genetic Variation
/ Genetics Of Adaptation
/ Genome
/ Parallel Evolution
/ Phenotype
/ Phenotypes
/ Phenotypic traits
/ Phylogeny
/ Population genetics
/ Probability
/ Review
/ Selection, Genetic
/ Special Feature
/ Taxa
2012
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The probability of genetic parallelism and convergence in natural populations
by
Schluter, Dolph
, Conte, Gina L.
, Arnegard, Matthew E.
, Peichel, Catherine L.
in
Adaptation, Biological
/ Biological Evolution
/ Biological taxonomies
/ Convergent Evolution
/ Environment
/ Evolution
/ Evolutionary genetics
/ Genetic Biases And Constraints
/ Genetic Convergence
/ Genetic mutation
/ Genetic Parallelism
/ Genetic Variation
/ Genetics Of Adaptation
/ Genome
/ Parallel Evolution
/ Phenotype
/ Phenotypes
/ Phenotypic traits
/ Phylogeny
/ Population genetics
/ Probability
/ Review
/ Selection, Genetic
/ Special Feature
/ Taxa
2012
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
The probability of genetic parallelism and convergence in natural populations
by
Schluter, Dolph
, Conte, Gina L.
, Arnegard, Matthew E.
, Peichel, Catherine L.
in
Adaptation, Biological
/ Biological Evolution
/ Biological taxonomies
/ Convergent Evolution
/ Environment
/ Evolution
/ Evolutionary genetics
/ Genetic Biases And Constraints
/ Genetic Convergence
/ Genetic mutation
/ Genetic Parallelism
/ Genetic Variation
/ Genetics Of Adaptation
/ Genome
/ Parallel Evolution
/ Phenotype
/ Phenotypes
/ Phenotypic traits
/ Phylogeny
/ Population genetics
/ Probability
/ Review
/ Selection, Genetic
/ Special Feature
/ Taxa
2012
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The probability of genetic parallelism and convergence in natural populations
Journal Article
The probability of genetic parallelism and convergence in natural populations
2012
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Overview
Genomic and genetic methods allow investigation of how frequently the same genes are used by different populations during adaptive evolution, yielding insights into the predictability of evolution at the genetic level. We estimated the probability of gene reuse in parallel and convergent phenotypic evolution in nature using data from published studies. The estimates are surprisingly high, with mean probabilities of 0.32 for genetic mapping studies and 0.55 for candidate gene studies. The probability declines with increasing age of the common ancestor of compared taxa, from about 0.8 for young nodes to 0.1–0.4 for the oldest nodes in our study. Probability of gene reuse is higher when populations begin from the same ancestor (genetic parallelism) than when they begin from divergent ancestors (genetic convergence). Our estimates are broadly consistent with genomic estimates of gene reuse during repeated adaptation to similar environments, but most genomic studies lack data on phenotypic traits affected. Frequent reuse of the same genes during repeated phenotypic evolution suggests that strong biases and constraints affect adaptive evolution, resulting in changes at a relatively small subset of available genes. Declines in the probability of gene reuse with increasing age suggest that these biases diverge with time.
Publisher
The Royal Society
Subject
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