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Ultra-High Density, Transcript-Based Genetic Maps of Pepper Define Recombination in the Genome and Synteny Among Related Species

Our ability to assemble complex genomes and construct ultradense genetic maps now allows the determination of recombination rates, translocations, and the extent of genomic collinearity between populations, species, and genera. We developed two ultradense genetic linkage maps for pepper from single-...

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Autores principales: Hill, Theresa, Ashrafi, Hamid, Chin-Wo, Sebastian Reyes, Stoffel, Kevin, Truco, Maria-Jose, Kozik, Alexander, Michelmore, Richard, Van Deynze, Allen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Genetics Society of America 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4632054/
https://www.ncbi.nlm.nih.gov/pubmed/26355020
http://dx.doi.org/10.1534/g3.115.020040
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author Hill, Theresa
Ashrafi, Hamid
Chin-Wo, Sebastian Reyes
Stoffel, Kevin
Truco, Maria-Jose
Kozik, Alexander
Michelmore, Richard
Van Deynze, Allen
author_facet Hill, Theresa
Ashrafi, Hamid
Chin-Wo, Sebastian Reyes
Stoffel, Kevin
Truco, Maria-Jose
Kozik, Alexander
Michelmore, Richard
Van Deynze, Allen
author_sort Hill, Theresa
collection PubMed
description Our ability to assemble complex genomes and construct ultradense genetic maps now allows the determination of recombination rates, translocations, and the extent of genomic collinearity between populations, species, and genera. We developed two ultradense genetic linkage maps for pepper from single-position polymorphisms (SPPs) identified de novo with a 30,173 unigene pepper genotyping array. The Capsicum frutescens × C. annuum interspecific and the C. annuum intraspecific genetic maps were constructed comprising 16,167 and 3,878 unigene markers in 2108 and 783 genetic bins, respectively. Accuracies of marker groupings and orders are validated by the high degree of collinearity between the two maps. Marker density was sufficient to locate the chromosomal breakpoint resulting in the P1/P8 translocation between C. frutescens and C. annuum to a single bin. The two maps aligned to the pepper genome showed varying marker density along the chromosomes. There were extensive chromosomal regions with suppressed recombination and reduced intraspecific marker density. These regions corresponded to the pronounced nonrecombining pericentromeric regions in tomato, a related Solanaceous species. Similar to tomato, the extent of reduced recombination appears to be more pronounced in pepper than in other plant species. Alignment of maps with the tomato and potato genomes shows the presence of previously known translocations and a translocation event that was not observed in previous genetic maps of pepper.
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spelling pubmed-46320542015-11-04 Ultra-High Density, Transcript-Based Genetic Maps of Pepper Define Recombination in the Genome and Synteny Among Related Species Hill, Theresa Ashrafi, Hamid Chin-Wo, Sebastian Reyes Stoffel, Kevin Truco, Maria-Jose Kozik, Alexander Michelmore, Richard Van Deynze, Allen G3 (Bethesda) Investigations Our ability to assemble complex genomes and construct ultradense genetic maps now allows the determination of recombination rates, translocations, and the extent of genomic collinearity between populations, species, and genera. We developed two ultradense genetic linkage maps for pepper from single-position polymorphisms (SPPs) identified de novo with a 30,173 unigene pepper genotyping array. The Capsicum frutescens × C. annuum interspecific and the C. annuum intraspecific genetic maps were constructed comprising 16,167 and 3,878 unigene markers in 2108 and 783 genetic bins, respectively. Accuracies of marker groupings and orders are validated by the high degree of collinearity between the two maps. Marker density was sufficient to locate the chromosomal breakpoint resulting in the P1/P8 translocation between C. frutescens and C. annuum to a single bin. The two maps aligned to the pepper genome showed varying marker density along the chromosomes. There were extensive chromosomal regions with suppressed recombination and reduced intraspecific marker density. These regions corresponded to the pronounced nonrecombining pericentromeric regions in tomato, a related Solanaceous species. Similar to tomato, the extent of reduced recombination appears to be more pronounced in pepper than in other plant species. Alignment of maps with the tomato and potato genomes shows the presence of previously known translocations and a translocation event that was not observed in previous genetic maps of pepper. Genetics Society of America 2015-09-08 /pmc/articles/PMC4632054/ /pubmed/26355020 http://dx.doi.org/10.1534/g3.115.020040 Text en Copyright © 2015 Hill et al. http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution Unported License (http://creativecommons.org/licenses/by/3.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Investigations
Hill, Theresa
Ashrafi, Hamid
Chin-Wo, Sebastian Reyes
Stoffel, Kevin
Truco, Maria-Jose
Kozik, Alexander
Michelmore, Richard
Van Deynze, Allen
Ultra-High Density, Transcript-Based Genetic Maps of Pepper Define Recombination in the Genome and Synteny Among Related Species
title Ultra-High Density, Transcript-Based Genetic Maps of Pepper Define Recombination in the Genome and Synteny Among Related Species
title_full Ultra-High Density, Transcript-Based Genetic Maps of Pepper Define Recombination in the Genome and Synteny Among Related Species
title_fullStr Ultra-High Density, Transcript-Based Genetic Maps of Pepper Define Recombination in the Genome and Synteny Among Related Species
title_full_unstemmed Ultra-High Density, Transcript-Based Genetic Maps of Pepper Define Recombination in the Genome and Synteny Among Related Species
title_short Ultra-High Density, Transcript-Based Genetic Maps of Pepper Define Recombination in the Genome and Synteny Among Related Species
title_sort ultra-high density, transcript-based genetic maps of pepper define recombination in the genome and synteny among related species
topic Investigations
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4632054/
https://www.ncbi.nlm.nih.gov/pubmed/26355020
http://dx.doi.org/10.1534/g3.115.020040
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