Construction of Reference Chromosome-Scale Pseudomolecules for Potato: Integrating the Potato Genome with Genetic and Physical Maps
Author
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Sharma, Sanjeev Kumar
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Bolser, Daniel
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de Boer, Jan
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Sønderkær, Mads
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Amoros, Walter
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Carboni, Martín Federico
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D'Ambrosio, Juan Martín
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Cruz, Germán de la
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Di Genova, Alex
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Douches, David S.
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Eguiluz, María
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Guo, Xiao
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Guzman, Frank
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Hackett, Christine A.
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Hamilton, John P.
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Guangcun, Li
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Li, Ying
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Lozano, Roberto
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Maass Sepúlveda, Alejandro
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Marshall, David
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Martinez, Diana
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McLean, Karen
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Mejía, Nilo
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Milne, Linda
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Munive, Susan
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Nagy, Istvan
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Ponce, Olga
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Ramirez, Manuel
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Simon, Reinhard
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Thomson, Susan J.
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Torres, Yerisf
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Waugh, Robbie
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Zhang, Zhongua
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Huang, Sanwen
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Visser, Richard G. F.
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Bachem, Christian W. B.
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Sagredo, Boris
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Feingold, Sergio E.
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Orjeda, Gisella
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Veilleux, Richard E.
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Bonierbale, Merideth
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Jacobs, Jeanne M. E.
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Milbourne, Dan
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Martin, David Michael
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Bryan, Glenn J.
Admission date
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2014-01-08T12:38:57Z
Available date
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2014-01-08T12:38:57Z
Publication date
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2013
Cita de ítem
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G3-GENES GENOMES GENETICS, Volume: 3, 2031-2047
en_US
Identifier
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doi: 10.1534/g3.113.007153
Identifier
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https://repositorio.uchile.cl/handle/2250/126031
General note
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Artículo de publicación ISI
en_US
Abstract
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The genome of potato, a major global food crop, was recently sequenced. The work presented
here details the integration of the potato reference genome (DM) with a new sequence-tagged site
marker2based linkage map and other physical and genetic maps of potato and the closely related species
tomato. Primary anchoring of the DM genome assembly was accomplished by the use of a diploid segregating
population, which was genotyped with several types of molecular genetic markers to construct a new
~936 cM linkage map comprising 2469 marker loci. In silico anchoring approaches used genetic and
physical maps from the diploid potato genotype RH89-039-16 (RH) and tomato. This combined approach
has allowed 951 superscaffolds to be ordered into pseudomolecules corresponding to the 12 potato
chromosomes. These pseudomolecules represent 674 Mb (~93%) of the 723 Mb genome assembly and
37,482 (~96%) of the 39,031 predicted genes. The superscaffold order and orientation within the pseudomolecules
are closely collinear with independently constructed high density linkage maps. Comparisons
between marker distribution and physical location reveal regions of greater and lesser recombination, as
well as regions exhibiting significant segregation distortion. The work presented here has led to a greatly
improved ordering of the potato reference genome superscaffolds into chromosomal “pseudomolecules”.