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QTL meta-analysis provides a comprehensive view of loci controlling partial resistance to Aphanomyces euteiches in four sources of resistance in pea

BACKGROUND: Development of durable plant genetic resistance to pathogens through strategies of QTL pyramiding and diversification requires in depth knowledge of polygenic resistance within the available germplasm. Polygenic partial resistance to Aphanomyces root rot, caused by Aphanomyces euteiches,...

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Autores principales: Hamon, Céline, Coyne, Clarice J, McGee, Rebecca J, Lesné, Angélique, Esnault, Robert, Mangin, Pierre, Hervé, Marie, Le Goff, Isabelle, Deniot, Gwenaëlle, Roux-Duparque, Martine, Morin, Gérard, McPhee, Kevin E, Delourme, Régine, Baranger, Alain, Pilet-Nayel, Marie-Laure
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3680057/
https://www.ncbi.nlm.nih.gov/pubmed/23497245
http://dx.doi.org/10.1186/1471-2229-13-45
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author Hamon, Céline
Coyne, Clarice J
McGee, Rebecca J
Lesné, Angélique
Esnault, Robert
Mangin, Pierre
Hervé, Marie
Le Goff, Isabelle
Deniot, Gwenaëlle
Roux-Duparque, Martine
Morin, Gérard
McPhee, Kevin E
Delourme, Régine
Baranger, Alain
Pilet-Nayel, Marie-Laure
author_facet Hamon, Céline
Coyne, Clarice J
McGee, Rebecca J
Lesné, Angélique
Esnault, Robert
Mangin, Pierre
Hervé, Marie
Le Goff, Isabelle
Deniot, Gwenaëlle
Roux-Duparque, Martine
Morin, Gérard
McPhee, Kevin E
Delourme, Régine
Baranger, Alain
Pilet-Nayel, Marie-Laure
author_sort Hamon, Céline
collection PubMed
description BACKGROUND: Development of durable plant genetic resistance to pathogens through strategies of QTL pyramiding and diversification requires in depth knowledge of polygenic resistance within the available germplasm. Polygenic partial resistance to Aphanomyces root rot, caused by Aphanomyces euteiches, one of the most damaging pathogens of pea worldwide, was previously dissected in individual mapping populations. However, there are no data available regarding the diversity of the resistance QTL across a broader collection of pea germplasm. In this study, we performed a meta-analysis of Aphanomyces root rot resistance QTL in the four main sources of resistance in pea and compared their genomic localization with genes/QTL controlling morphological or phenological traits and with putative candidate genes. RESULTS: Meta-analysis, conducted using 244 individual QTL reported previously in three mapping populations (Puget x 90–2079, Baccara x PI180693 and Baccara x 552) and in a fourth mapping population in this study (DSP x 90–2131), resulted in the identification of 27 meta-QTL for resistance to A. euteiches. Confidence intervals of meta-QTL were, on average, reduced four-fold compared to mean confidence intervals of individual QTL. Eleven consistent meta-QTL, which highlight seven highly consistent genomic regions, were identified. Few meta-QTL specificities were observed among mapping populations, suggesting that sources of resistance are not independent. Seven resistance meta-QTL, including six of the highly consistent genomic regions, co-localized with six of the meta-QTL identified in this study for earliness and plant height and with three morphological genes (Af, A, R). Alleles contributing to the resistance were often associated with undesirable alleles for dry pea breeding. Candidate genes underlying six main meta-QTL regions were identified using colinearity between the pea and Medicago truncatula genomes. CONCLUSIONS: QTL meta-analysis provided an overview of the moderately low diversity of loci controlling partial resistance to A. euteiches in four main sources of resistance in pea. Seven highly consistent genomic regions with potential use in marker-assisted-selection were identified. Confidence intervals at several main QTL regions were reduced and co-segregation among resistance and morphological/phenological alleles was identified. Further work will be required to identify the best combinations of QTL for durably increasing partial resistance to A. euteiches.
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spelling pubmed-36800572013-06-25 QTL meta-analysis provides a comprehensive view of loci controlling partial resistance to Aphanomyces euteiches in four sources of resistance in pea Hamon, Céline Coyne, Clarice J McGee, Rebecca J Lesné, Angélique Esnault, Robert Mangin, Pierre Hervé, Marie Le Goff, Isabelle Deniot, Gwenaëlle Roux-Duparque, Martine Morin, Gérard McPhee, Kevin E Delourme, Régine Baranger, Alain Pilet-Nayel, Marie-Laure BMC Plant Biol Research Article BACKGROUND: Development of durable plant genetic resistance to pathogens through strategies of QTL pyramiding and diversification requires in depth knowledge of polygenic resistance within the available germplasm. Polygenic partial resistance to Aphanomyces root rot, caused by Aphanomyces euteiches, one of the most damaging pathogens of pea worldwide, was previously dissected in individual mapping populations. However, there are no data available regarding the diversity of the resistance QTL across a broader collection of pea germplasm. In this study, we performed a meta-analysis of Aphanomyces root rot resistance QTL in the four main sources of resistance in pea and compared their genomic localization with genes/QTL controlling morphological or phenological traits and with putative candidate genes. RESULTS: Meta-analysis, conducted using 244 individual QTL reported previously in three mapping populations (Puget x 90–2079, Baccara x PI180693 and Baccara x 552) and in a fourth mapping population in this study (DSP x 90–2131), resulted in the identification of 27 meta-QTL for resistance to A. euteiches. Confidence intervals of meta-QTL were, on average, reduced four-fold compared to mean confidence intervals of individual QTL. Eleven consistent meta-QTL, which highlight seven highly consistent genomic regions, were identified. Few meta-QTL specificities were observed among mapping populations, suggesting that sources of resistance are not independent. Seven resistance meta-QTL, including six of the highly consistent genomic regions, co-localized with six of the meta-QTL identified in this study for earliness and plant height and with three morphological genes (Af, A, R). Alleles contributing to the resistance were often associated with undesirable alleles for dry pea breeding. Candidate genes underlying six main meta-QTL regions were identified using colinearity between the pea and Medicago truncatula genomes. CONCLUSIONS: QTL meta-analysis provided an overview of the moderately low diversity of loci controlling partial resistance to A. euteiches in four main sources of resistance in pea. Seven highly consistent genomic regions with potential use in marker-assisted-selection were identified. Confidence intervals at several main QTL regions were reduced and co-segregation among resistance and morphological/phenological alleles was identified. Further work will be required to identify the best combinations of QTL for durably increasing partial resistance to A. euteiches. BioMed Central 2013-03-16 /pmc/articles/PMC3680057/ /pubmed/23497245 http://dx.doi.org/10.1186/1471-2229-13-45 Text en Copyright © 2013 Hamon et al.; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Hamon, Céline
Coyne, Clarice J
McGee, Rebecca J
Lesné, Angélique
Esnault, Robert
Mangin, Pierre
Hervé, Marie
Le Goff, Isabelle
Deniot, Gwenaëlle
Roux-Duparque, Martine
Morin, Gérard
McPhee, Kevin E
Delourme, Régine
Baranger, Alain
Pilet-Nayel, Marie-Laure
QTL meta-analysis provides a comprehensive view of loci controlling partial resistance to Aphanomyces euteiches in four sources of resistance in pea
title QTL meta-analysis provides a comprehensive view of loci controlling partial resistance to Aphanomyces euteiches in four sources of resistance in pea
title_full QTL meta-analysis provides a comprehensive view of loci controlling partial resistance to Aphanomyces euteiches in four sources of resistance in pea
title_fullStr QTL meta-analysis provides a comprehensive view of loci controlling partial resistance to Aphanomyces euteiches in four sources of resistance in pea
title_full_unstemmed QTL meta-analysis provides a comprehensive view of loci controlling partial resistance to Aphanomyces euteiches in four sources of resistance in pea
title_short QTL meta-analysis provides a comprehensive view of loci controlling partial resistance to Aphanomyces euteiches in four sources of resistance in pea
title_sort qtl meta-analysis provides a comprehensive view of loci controlling partial resistance to aphanomyces euteiches in four sources of resistance in pea
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3680057/
https://www.ncbi.nlm.nih.gov/pubmed/23497245
http://dx.doi.org/10.1186/1471-2229-13-45
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