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What haplodiploids can teach us about hybridization and speciation

Most evolutionary theory focuses on species that reproduce through sexual reproduction where both sexes have a diploid chromosome count. Yet a substantial proportion of multicellular species display complex life cycles, with both haploid and diploid life stages. A classic example is haplodiploidy, w...

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Autores principales: Lohse, Konrad, Ross, Laura
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Ltd 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4620704/
https://www.ncbi.nlm.nih.gov/pubmed/26477297
http://dx.doi.org/10.1111/mec.13393
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author Lohse, Konrad
Ross, Laura
author_facet Lohse, Konrad
Ross, Laura
author_sort Lohse, Konrad
collection PubMed
description Most evolutionary theory focuses on species that reproduce through sexual reproduction where both sexes have a diploid chromosome count. Yet a substantial proportion of multicellular species display complex life cycles, with both haploid and diploid life stages. A classic example is haplodiploidy, where females develop from fertilized eggs and are diploid, while males develop from unfertilized eggs and are haploid. Although haplodiploids make up about 15% of all animals (de la Filia et al. 2015), this type of reproduction is rarely considered in evolutionary theory. In this issue of Molecular Ecology, Patten et al. (2015) develop a theoretical model to compare the rate of nuclear and mitochondrial introgression in haplodiploid and diploid species. They show that when two haplodiploid species hybridize, nuclear genes are much less likely to cross the species barrier than if both species were to be diploids. The reason for this is that only half of the offspring resulting from matings between haplodiploid species are true hybrids: sons from such mating only inherit their mother genes and therefore only contain genes of the maternal species. Truly, hybrid males can only occur through backcrossing of a hybrid female to a male of one of the parental species. While this twist of haplodiploid transmission genetics limits nuclear introgression, mitochondrial genes, which are maternally inherited, are unaffected by the scarcity of hybrid males. In other words, the rate of mitochondrial introgression is the same for haplodiploid and diploid species. As a result, haplodiploid species on average show a bias of mitochondrial compared to nuclear introgression.
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spelling pubmed-46207042015-10-30 What haplodiploids can teach us about hybridization and speciation Lohse, Konrad Ross, Laura Mol Ecol News and Views Most evolutionary theory focuses on species that reproduce through sexual reproduction where both sexes have a diploid chromosome count. Yet a substantial proportion of multicellular species display complex life cycles, with both haploid and diploid life stages. A classic example is haplodiploidy, where females develop from fertilized eggs and are diploid, while males develop from unfertilized eggs and are haploid. Although haplodiploids make up about 15% of all animals (de la Filia et al. 2015), this type of reproduction is rarely considered in evolutionary theory. In this issue of Molecular Ecology, Patten et al. (2015) develop a theoretical model to compare the rate of nuclear and mitochondrial introgression in haplodiploid and diploid species. They show that when two haplodiploid species hybridize, nuclear genes are much less likely to cross the species barrier than if both species were to be diploids. The reason for this is that only half of the offspring resulting from matings between haplodiploid species are true hybrids: sons from such mating only inherit their mother genes and therefore only contain genes of the maternal species. Truly, hybrid males can only occur through backcrossing of a hybrid female to a male of one of the parental species. While this twist of haplodiploid transmission genetics limits nuclear introgression, mitochondrial genes, which are maternally inherited, are unaffected by the scarcity of hybrid males. In other words, the rate of mitochondrial introgression is the same for haplodiploid and diploid species. As a result, haplodiploid species on average show a bias of mitochondrial compared to nuclear introgression. John Wiley & Sons, Ltd 2015-10 2015-10-18 /pmc/articles/PMC4620704/ /pubmed/26477297 http://dx.doi.org/10.1111/mec.13393 Text en © 2015 The Authors. Molecular Ecology published by John Wiley & Sons Ltd http://creativecommons.org/licenses/by/4.0/ This is an open access article under the terms of the Creative Commons Attribution License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle News and Views
Lohse, Konrad
Ross, Laura
What haplodiploids can teach us about hybridization and speciation
title What haplodiploids can teach us about hybridization and speciation
title_full What haplodiploids can teach us about hybridization and speciation
title_fullStr What haplodiploids can teach us about hybridization and speciation
title_full_unstemmed What haplodiploids can teach us about hybridization and speciation
title_short What haplodiploids can teach us about hybridization and speciation
title_sort what haplodiploids can teach us about hybridization and speciation
topic News and Views
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4620704/
https://www.ncbi.nlm.nih.gov/pubmed/26477297
http://dx.doi.org/10.1111/mec.13393
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