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Exogenous selection rather than cytonuclear incompatibilities shapes asymmetrical fitness of reciprocal Arabidopsis hybrids

Reciprocal crosses between species often display an asymmetry in the fitness of F(1) hybrids. This pattern, referred to as isolation asymmetry or Darwin's corollary to Haldane's rule, is a general feature of reproductive isolation in plants, yet factors determining its magnitude and direct...

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Autores principales: Muir, Graham, Ruiz-Duarte, Paola, Hohmann, Nora, Mable, Barbara K, Novikova, Polina, Schmickl, Roswitha, Guggisberg, Alessia, Koch, Marcus A
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BlackWell Publishing Ltd 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4409420/
https://www.ncbi.nlm.nih.gov/pubmed/25937915
http://dx.doi.org/10.1002/ece3.1474
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author Muir, Graham
Ruiz-Duarte, Paola
Hohmann, Nora
Mable, Barbara K
Novikova, Polina
Schmickl, Roswitha
Guggisberg, Alessia
Koch, Marcus A
author_facet Muir, Graham
Ruiz-Duarte, Paola
Hohmann, Nora
Mable, Barbara K
Novikova, Polina
Schmickl, Roswitha
Guggisberg, Alessia
Koch, Marcus A
author_sort Muir, Graham
collection PubMed
description Reciprocal crosses between species often display an asymmetry in the fitness of F(1) hybrids. This pattern, referred to as isolation asymmetry or Darwin's corollary to Haldane's rule, is a general feature of reproductive isolation in plants, yet factors determining its magnitude and direction remain unclear. We evaluated reciprocal species crosses between two naturally hybridizing diploid species of Arabidopsis to assess the degree of isolation asymmetry at different postmating life stages. We found that pollen from Arabidopsis arenosa will usually fertilize ovules from Arabidopsis lyrata; the reverse receptivity being less complete. Maternal A. lyrata parents set more F(1) hybrid seed, but germinate at lower frequency, reversing the asymmetry. As predicted by theory, A. lyrata (the maternal parent with lower seed viability in crosses) exhibited accelerated chloroplast evolution, indicating that cytonuclear incompatibilities may play a role in reproductive isolation. However, this direction of asymmetrical reproductive isolation is not replicated in natural suture zones, where delayed hybrid breakdown of fertility at later developmental stages, or later-acting selection against A. arenosa maternal hybrids (unrelated to hybrid fertility, e.g., substrate adaptation) may be responsible for an excess of A. lyrata maternal hybrids. Exogenous selection rather than cytonuclear incompatibilities thus shapes the asymmetrical postmating isolation in nature.
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spelling pubmed-44094202015-05-01 Exogenous selection rather than cytonuclear incompatibilities shapes asymmetrical fitness of reciprocal Arabidopsis hybrids Muir, Graham Ruiz-Duarte, Paola Hohmann, Nora Mable, Barbara K Novikova, Polina Schmickl, Roswitha Guggisberg, Alessia Koch, Marcus A Ecol Evol Original Research Reciprocal crosses between species often display an asymmetry in the fitness of F(1) hybrids. This pattern, referred to as isolation asymmetry or Darwin's corollary to Haldane's rule, is a general feature of reproductive isolation in plants, yet factors determining its magnitude and direction remain unclear. We evaluated reciprocal species crosses between two naturally hybridizing diploid species of Arabidopsis to assess the degree of isolation asymmetry at different postmating life stages. We found that pollen from Arabidopsis arenosa will usually fertilize ovules from Arabidopsis lyrata; the reverse receptivity being less complete. Maternal A. lyrata parents set more F(1) hybrid seed, but germinate at lower frequency, reversing the asymmetry. As predicted by theory, A. lyrata (the maternal parent with lower seed viability in crosses) exhibited accelerated chloroplast evolution, indicating that cytonuclear incompatibilities may play a role in reproductive isolation. However, this direction of asymmetrical reproductive isolation is not replicated in natural suture zones, where delayed hybrid breakdown of fertility at later developmental stages, or later-acting selection against A. arenosa maternal hybrids (unrelated to hybrid fertility, e.g., substrate adaptation) may be responsible for an excess of A. lyrata maternal hybrids. Exogenous selection rather than cytonuclear incompatibilities thus shapes the asymmetrical postmating isolation in nature. BlackWell Publishing Ltd 2015-04 2015-03-25 /pmc/articles/PMC4409420/ /pubmed/25937915 http://dx.doi.org/10.1002/ece3.1474 Text en © 2015 The Authors. Ecology and Evolution 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 Original Research
Muir, Graham
Ruiz-Duarte, Paola
Hohmann, Nora
Mable, Barbara K
Novikova, Polina
Schmickl, Roswitha
Guggisberg, Alessia
Koch, Marcus A
Exogenous selection rather than cytonuclear incompatibilities shapes asymmetrical fitness of reciprocal Arabidopsis hybrids
title Exogenous selection rather than cytonuclear incompatibilities shapes asymmetrical fitness of reciprocal Arabidopsis hybrids
title_full Exogenous selection rather than cytonuclear incompatibilities shapes asymmetrical fitness of reciprocal Arabidopsis hybrids
title_fullStr Exogenous selection rather than cytonuclear incompatibilities shapes asymmetrical fitness of reciprocal Arabidopsis hybrids
title_full_unstemmed Exogenous selection rather than cytonuclear incompatibilities shapes asymmetrical fitness of reciprocal Arabidopsis hybrids
title_short Exogenous selection rather than cytonuclear incompatibilities shapes asymmetrical fitness of reciprocal Arabidopsis hybrids
title_sort exogenous selection rather than cytonuclear incompatibilities shapes asymmetrical fitness of reciprocal arabidopsis hybrids
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4409420/
https://www.ncbi.nlm.nih.gov/pubmed/25937915
http://dx.doi.org/10.1002/ece3.1474
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