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Amplifying recombination genome-wide and reshaping crossover landscapes in Brassicas

Meiotic recombination by crossovers (COs) is tightly regulated, limiting its key role in producing genetic diversity. However, while COs are usually restricted in number and not homogenously distributed along chromosomes, we show here how to disrupt these rules in Brassica species by using allotripl...

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Autores principales: Pelé, Alexandre, Falque, Matthieu, Trotoux, Gwenn, Eber, Frédérique, Nègre, Sylvie, Gilet, Marie, Huteau, Virginie, Lodé, Maryse, Jousseaume, Thibaut, Dechaumet, Sylvain, Morice, Jérôme, Poncet, Charles, Coriton, Olivier, Martin, Olivier C., Rousseau-Gueutin, Mathieu, Chèvre, Anne-Marie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5444851/
https://www.ncbi.nlm.nih.gov/pubmed/28493942
http://dx.doi.org/10.1371/journal.pgen.1006794
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author Pelé, Alexandre
Falque, Matthieu
Trotoux, Gwenn
Eber, Frédérique
Nègre, Sylvie
Gilet, Marie
Huteau, Virginie
Lodé, Maryse
Jousseaume, Thibaut
Dechaumet, Sylvain
Morice, Jérôme
Poncet, Charles
Coriton, Olivier
Martin, Olivier C.
Rousseau-Gueutin, Mathieu
Chèvre, Anne-Marie
author_facet Pelé, Alexandre
Falque, Matthieu
Trotoux, Gwenn
Eber, Frédérique
Nègre, Sylvie
Gilet, Marie
Huteau, Virginie
Lodé, Maryse
Jousseaume, Thibaut
Dechaumet, Sylvain
Morice, Jérôme
Poncet, Charles
Coriton, Olivier
Martin, Olivier C.
Rousseau-Gueutin, Mathieu
Chèvre, Anne-Marie
author_sort Pelé, Alexandre
collection PubMed
description Meiotic recombination by crossovers (COs) is tightly regulated, limiting its key role in producing genetic diversity. However, while COs are usually restricted in number and not homogenously distributed along chromosomes, we show here how to disrupt these rules in Brassica species by using allotriploid hybrids (AAC, 2n = 3x = 29), resulting from the cross between the allotetraploid rapeseed (B. napus, AACC, 2n = 4x = 38) and one of its diploid progenitors (B. rapa, AA, 2n = 2x = 20). We produced mapping populations from different genotypes of both diploid AA and triploid AAC hybrids, used as female and/or as male. Each population revealed nearly 3,000 COs that we studied with SNP markers well distributed along the A genome (on average 1 SNP per 1.25 Mbp). Compared to the case of diploids, allotriploid hybrids showed 1.7 to 3.4 times more overall COs depending on the sex of meiosis and the genetic background. Most surprisingly, we found that such a rise was always associated with (i) dramatic changes in the shape of recombination landscapes and (ii) a strong decrease of CO interference. Hybrids carrying an additional C genome exhibited COs all along the A chromosomes, even in the vicinity of centromeres that are deprived of COs in diploids as well as in most studied species. Moreover, in male allotriploid hybrids we found that Class I COs are mostly responsible for the changes of CO rates, landscapes and interference. These results offer the opportunity for geneticists and plant breeders to dramatically enhance the generation of diversity in Brassica species by disrupting the linkage drag coming from limits on number and distribution of COs.
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spelling pubmed-54448512017-06-06 Amplifying recombination genome-wide and reshaping crossover landscapes in Brassicas Pelé, Alexandre Falque, Matthieu Trotoux, Gwenn Eber, Frédérique Nègre, Sylvie Gilet, Marie Huteau, Virginie Lodé, Maryse Jousseaume, Thibaut Dechaumet, Sylvain Morice, Jérôme Poncet, Charles Coriton, Olivier Martin, Olivier C. Rousseau-Gueutin, Mathieu Chèvre, Anne-Marie PLoS Genet Research Article Meiotic recombination by crossovers (COs) is tightly regulated, limiting its key role in producing genetic diversity. However, while COs are usually restricted in number and not homogenously distributed along chromosomes, we show here how to disrupt these rules in Brassica species by using allotriploid hybrids (AAC, 2n = 3x = 29), resulting from the cross between the allotetraploid rapeseed (B. napus, AACC, 2n = 4x = 38) and one of its diploid progenitors (B. rapa, AA, 2n = 2x = 20). We produced mapping populations from different genotypes of both diploid AA and triploid AAC hybrids, used as female and/or as male. Each population revealed nearly 3,000 COs that we studied with SNP markers well distributed along the A genome (on average 1 SNP per 1.25 Mbp). Compared to the case of diploids, allotriploid hybrids showed 1.7 to 3.4 times more overall COs depending on the sex of meiosis and the genetic background. Most surprisingly, we found that such a rise was always associated with (i) dramatic changes in the shape of recombination landscapes and (ii) a strong decrease of CO interference. Hybrids carrying an additional C genome exhibited COs all along the A chromosomes, even in the vicinity of centromeres that are deprived of COs in diploids as well as in most studied species. Moreover, in male allotriploid hybrids we found that Class I COs are mostly responsible for the changes of CO rates, landscapes and interference. These results offer the opportunity for geneticists and plant breeders to dramatically enhance the generation of diversity in Brassica species by disrupting the linkage drag coming from limits on number and distribution of COs. Public Library of Science 2017-05-11 /pmc/articles/PMC5444851/ /pubmed/28493942 http://dx.doi.org/10.1371/journal.pgen.1006794 Text en © 2017 Pelé et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Pelé, Alexandre
Falque, Matthieu
Trotoux, Gwenn
Eber, Frédérique
Nègre, Sylvie
Gilet, Marie
Huteau, Virginie
Lodé, Maryse
Jousseaume, Thibaut
Dechaumet, Sylvain
Morice, Jérôme
Poncet, Charles
Coriton, Olivier
Martin, Olivier C.
Rousseau-Gueutin, Mathieu
Chèvre, Anne-Marie
Amplifying recombination genome-wide and reshaping crossover landscapes in Brassicas
title Amplifying recombination genome-wide and reshaping crossover landscapes in Brassicas
title_full Amplifying recombination genome-wide and reshaping crossover landscapes in Brassicas
title_fullStr Amplifying recombination genome-wide and reshaping crossover landscapes in Brassicas
title_full_unstemmed Amplifying recombination genome-wide and reshaping crossover landscapes in Brassicas
title_short Amplifying recombination genome-wide and reshaping crossover landscapes in Brassicas
title_sort amplifying recombination genome-wide and reshaping crossover landscapes in brassicas
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5444851/
https://www.ncbi.nlm.nih.gov/pubmed/28493942
http://dx.doi.org/10.1371/journal.pgen.1006794
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