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A locally congenic backcross design in pig: a new regional fine QTL mapping approach miming congenic strains used in mouse

BACKGROUND: In previous studies, a major QTL affecting fatness and growth has been mapped to pig chromosome 1q (SSC1q) using Large White - Meishan intercrosses. A higher fat depth and a larger growth rate have been reported for the allele of MS origin. Additionally the LW allele showed partial domin...

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Autores principales: Riquet, Juliette, Gilbert, Hélène, Servin, Bertrand, Sanchez, Marie-Pierre, Iannuccelli, Nathalie, Billon, Yvon, Bidanel, Jean-Pierre, Milan, Denis
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3748014/
https://www.ncbi.nlm.nih.gov/pubmed/21235745
http://dx.doi.org/10.1186/1471-2156-12-6
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author Riquet, Juliette
Gilbert, Hélène
Servin, Bertrand
Sanchez, Marie-Pierre
Iannuccelli, Nathalie
Billon, Yvon
Bidanel, Jean-Pierre
Milan, Denis
author_facet Riquet, Juliette
Gilbert, Hélène
Servin, Bertrand
Sanchez, Marie-Pierre
Iannuccelli, Nathalie
Billon, Yvon
Bidanel, Jean-Pierre
Milan, Denis
author_sort Riquet, Juliette
collection PubMed
description BACKGROUND: In previous studies, a major QTL affecting fatness and growth has been mapped to pig chromosome 1q (SSC1q) using Large White - Meishan intercrosses. A higher fat depth and a larger growth rate have been reported for the allele of MS origin. Additionally the LW allele showed partial dominance effects over the MS allele for both traits. In order to refine the QTL mapping interval, advanced backcross generations were produced. Recombinant heterozygous sires were mated to LW sows in order to progeny test the sire segregation of the QTL and refine the QTL localisation. However due to the partial dominance of the LW allele, BC scheme using LW as the receiving population was not optimal. RESULTS: To overcome the difficulties related to the dominance of the LW QTL allele, a population of dams locally homozygous for the MS haplotype in the QTL region, but with an overall 29/32 LW genetic background, has been set up. Progeny testing results, using these receiver dams, were much more significant than those previously obtained with LW dams, and the SSC1 QTL interval was refined to 8 cM. Considering the results obtained, a powerful experimental design for farm animals is proposed, mimicking locally genetically identical strains used in mouse for QTL fine mapping. CONCLUSIONS: We have further characterized the fatness QTL on pig chromosome 1 and refined its map position from a 30 cM interval to a 8 cM interval, using a locally congenic BC design. We have obtained highly significant results and overcome difficulties due to the dominance of the LW allele. This design will be used to produce additional, advanced BC families to further refine this QTL localization.
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spelling pubmed-37480142013-08-22 A locally congenic backcross design in pig: a new regional fine QTL mapping approach miming congenic strains used in mouse Riquet, Juliette Gilbert, Hélène Servin, Bertrand Sanchez, Marie-Pierre Iannuccelli, Nathalie Billon, Yvon Bidanel, Jean-Pierre Milan, Denis BMC Genet Research Article BACKGROUND: In previous studies, a major QTL affecting fatness and growth has been mapped to pig chromosome 1q (SSC1q) using Large White - Meishan intercrosses. A higher fat depth and a larger growth rate have been reported for the allele of MS origin. Additionally the LW allele showed partial dominance effects over the MS allele for both traits. In order to refine the QTL mapping interval, advanced backcross generations were produced. Recombinant heterozygous sires were mated to LW sows in order to progeny test the sire segregation of the QTL and refine the QTL localisation. However due to the partial dominance of the LW allele, BC scheme using LW as the receiving population was not optimal. RESULTS: To overcome the difficulties related to the dominance of the LW QTL allele, a population of dams locally homozygous for the MS haplotype in the QTL region, but with an overall 29/32 LW genetic background, has been set up. Progeny testing results, using these receiver dams, were much more significant than those previously obtained with LW dams, and the SSC1 QTL interval was refined to 8 cM. Considering the results obtained, a powerful experimental design for farm animals is proposed, mimicking locally genetically identical strains used in mouse for QTL fine mapping. CONCLUSIONS: We have further characterized the fatness QTL on pig chromosome 1 and refined its map position from a 30 cM interval to a 8 cM interval, using a locally congenic BC design. We have obtained highly significant results and overcome difficulties due to the dominance of the LW allele. This design will be used to produce additional, advanced BC families to further refine this QTL localization. BioMed Central 2011-01-14 /pmc/articles/PMC3748014/ /pubmed/21235745 http://dx.doi.org/10.1186/1471-2156-12-6 Text en Copyright ©2011 Riquet 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
Riquet, Juliette
Gilbert, Hélène
Servin, Bertrand
Sanchez, Marie-Pierre
Iannuccelli, Nathalie
Billon, Yvon
Bidanel, Jean-Pierre
Milan, Denis
A locally congenic backcross design in pig: a new regional fine QTL mapping approach miming congenic strains used in mouse
title A locally congenic backcross design in pig: a new regional fine QTL mapping approach miming congenic strains used in mouse
title_full A locally congenic backcross design in pig: a new regional fine QTL mapping approach miming congenic strains used in mouse
title_fullStr A locally congenic backcross design in pig: a new regional fine QTL mapping approach miming congenic strains used in mouse
title_full_unstemmed A locally congenic backcross design in pig: a new regional fine QTL mapping approach miming congenic strains used in mouse
title_short A locally congenic backcross design in pig: a new regional fine QTL mapping approach miming congenic strains used in mouse
title_sort locally congenic backcross design in pig: a new regional fine qtl mapping approach miming congenic strains used in mouse
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3748014/
https://www.ncbi.nlm.nih.gov/pubmed/21235745
http://dx.doi.org/10.1186/1471-2156-12-6
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