Accumulation of Deleterious Mutations Near Sexually Antagonistic Genes

Mutation generates a steady supply of genetic variation that, while occasionally useful for adaptation, is more often deleterious for fitness. Recent research has emphasized that the fitness effects of mutations often differ between the sexes, leading to important evolutionary consequences for the m...

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Published in:G3: Genes, Genomes, Genetics
Main Authors: Tim Connallon, Crispin Y. Jordan
Format: Article
Language:English
Published: Oxford University Press 2016-08-01
Subjects:
Online Access:http://g3journal.org/lookup/doi/10.1534/g3.116.031161
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author Tim Connallon
Crispin Y. Jordan
author_facet Tim Connallon
Crispin Y. Jordan
author_sort Tim Connallon
collection DOAJ
container_title G3: Genes, Genomes, Genetics
description Mutation generates a steady supply of genetic variation that, while occasionally useful for adaptation, is more often deleterious for fitness. Recent research has emphasized that the fitness effects of mutations often differ between the sexes, leading to important evolutionary consequences for the maintenance of genetic variation and long-term population viability. Some forms of sex-specific selection—i.e., stronger purifying selection in males than females—can help purge a population’s load of female-harming mutations and promote population growth. Other scenarios—e.g., sexually antagonistic selection, in which mutations that harm females are beneficial for males—inflate genetic loads and potentially dampen population viability. Evolutionary processes of sexual antagonism and purifying selection are likely to impact the evolutionary dynamics of different loci within a genome, yet theory has mostly ignored the potential for interactions between such loci to jointly shape the evolutionary genetic basis of female and male fitness variation. Here, we show that sexually antagonistic selection at a locus tends to elevate the frequencies of deleterious alleles at tightly linked loci that evolve under purifying selection. Moreover, haplotypes that segregate for different sexually antagonistic alleles accumulate different types of deleterious mutations. Haplotypes that carry female-benefit sexually antagonistic alleles preferentially accumulate mutations that are primarily male harming, whereas male-benefit haplotypes accumulate mutations that are primarily female harming. The theory predicts that sexually antagonistic selection should shape the genomic organization of genetic variation that differentially impacts female and male fitness, and contribute to sexual dimorphism in the genetic basis of fitness variation.
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spelling doaj-art-66f7fe99ea514b1c82dc4d4d9def5cdd2025-08-19T19:05:53ZengOxford University PressG3: Genes, Genomes, Genetics2160-18362016-08-01682273228410.1534/g3.116.0311614Accumulation of Deleterious Mutations Near Sexually Antagonistic GenesTim ConnallonCrispin Y. JordanMutation generates a steady supply of genetic variation that, while occasionally useful for adaptation, is more often deleterious for fitness. Recent research has emphasized that the fitness effects of mutations often differ between the sexes, leading to important evolutionary consequences for the maintenance of genetic variation and long-term population viability. Some forms of sex-specific selection—i.e., stronger purifying selection in males than females—can help purge a population’s load of female-harming mutations and promote population growth. Other scenarios—e.g., sexually antagonistic selection, in which mutations that harm females are beneficial for males—inflate genetic loads and potentially dampen population viability. Evolutionary processes of sexual antagonism and purifying selection are likely to impact the evolutionary dynamics of different loci within a genome, yet theory has mostly ignored the potential for interactions between such loci to jointly shape the evolutionary genetic basis of female and male fitness variation. Here, we show that sexually antagonistic selection at a locus tends to elevate the frequencies of deleterious alleles at tightly linked loci that evolve under purifying selection. Moreover, haplotypes that segregate for different sexually antagonistic alleles accumulate different types of deleterious mutations. Haplotypes that carry female-benefit sexually antagonistic alleles preferentially accumulate mutations that are primarily male harming, whereas male-benefit haplotypes accumulate mutations that are primarily female harming. The theory predicts that sexually antagonistic selection should shape the genomic organization of genetic variation that differentially impacts female and male fitness, and contribute to sexual dimorphism in the genetic basis of fitness variation.http://g3journal.org/lookup/doi/10.1534/g3.116.031161intralocus sexual conflictgenetic loadhaploid selectionrecombinationlinkage disequilibrium
spellingShingle Tim Connallon
Crispin Y. Jordan
Accumulation of Deleterious Mutations Near Sexually Antagonistic Genes
intralocus sexual conflict
genetic load
haploid selection
recombination
linkage disequilibrium
title Accumulation of Deleterious Mutations Near Sexually Antagonistic Genes
title_full Accumulation of Deleterious Mutations Near Sexually Antagonistic Genes
title_fullStr Accumulation of Deleterious Mutations Near Sexually Antagonistic Genes
title_full_unstemmed Accumulation of Deleterious Mutations Near Sexually Antagonistic Genes
title_short Accumulation of Deleterious Mutations Near Sexually Antagonistic Genes
title_sort accumulation of deleterious mutations near sexually antagonistic genes
topic intralocus sexual conflict
genetic load
haploid selection
recombination
linkage disequilibrium
url http://g3journal.org/lookup/doi/10.1534/g3.116.031161
work_keys_str_mv AT timconnallon accumulationofdeleteriousmutationsnearsexuallyantagonisticgenes
AT crispinyjordan accumulationofdeleteriousmutationsnearsexuallyantagonisticgenes