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| Indexado |
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| DOI | 10.1007/S10126-019-09935-5 | ||||
| Año | 2020 | ||||
| Tipo | artículo de investigación |
Citas Totales
Autores Afiliación Chile
Instituciones Chile
% Participación
Internacional
Autores
Afiliación Extranjera
Instituciones
Extranjeras
Nile tilapia (Oreochromis niloticus) is the second most important farmed fish in the world and a sustainable source of protein for human consumption. Several genetic improvement programs have been established for this species in the world. Currently, the estimation of genetic merit of breeders is typically based on genealogical and phenotypic information. Genome-wide information can be exploited to efficiently incorporate traits that are difficult to measure into the breeding goal. Thus, single nucleotide polymorphisms (SNPs) are required to investigate phenotype-genotype associations and determine the genomic basis of economically important traits. We performed de novo SNP discovery in three different populations of farmed Nile tilapia. A total of 29.9 million non-redundant SNPs were identified through Illumina (HiSeq 2500) whole-genome resequencing of 326 individual samples. After applying several filtering steps, including removing SNP based on genotype and site quality, presence of Mendelian errors, and non-unique position in the genome, a total of 50,000 high-quality SNPs were selected for the development of a custom Illumina BeadChip SNP panel. These SNPs were highly informative in the three populations analyzed showing between 43,869 (94%) and 46,139 (99%) SNPs in Hardy-Weinberg Equilibrium; 37,843 (76%) and 45,171(90%) SNPs with a minor allele frequency (MAF) higher than 0.05; and 43,450 (87%) and 46,570 (93%) SNPs with a MAF higher than 0.01. The 50K SNP panel developed in the current work will be useful for the dissection of economically relevant traits, enhancing breeding programs through genomic selection, as well as supporting genetic studies in farmed populations of Nile tilapia using dense genome-wide information.
| Ord. | Autor | Género | Institución - País |
|---|---|---|---|
| 1 | Yanez, J. M. | Hombre |
Universidad de Chile - Chile
Núcleo Milenio de Salmónidos Invasores - Chile Núcleo Milenio de Salmónidos Invasores Australes - Chile |
| 2 | Yoshida, Grazyella | - |
Universidad de Chile - Chile
Benchmark Genet Chile - Chile Benchmark Genetics Chile - Chile |
| 3 | BARRIA-GONZALEZ, AGUSTIN ADOLFO | Hombre |
Universidad de Chile - Chile
UNIV EDINBURGH - Reino Unido University of Edinburgh, Roslin Institute - Reino Unido The Royal (Dick) School of Veterinary Studies - Reino Unido |
| 4 | Palma-Vejares, Ricardo | Hombre |
UNIV EDINBURGH - Reino Unido
Universidad de Chile - Chile |
| 5 | Travisany, Dante | Hombre |
UNIV EDINBURGH - Reino Unido
Universidad de Chile - Chile |
| 6 | Diaz-Dominguez, Diego | Hombre |
UNIV EDINBURGH - Reino Unido
Universidad de Chile - Chile |
| 7 | Caceres, Giovanna | Mujer |
Universidad de Chile - Chile
|
| 8 | CADIZ-ESCOBAR, MARIA IGNACIA | Mujer |
Universidad de Chile - Chile
|
| 9 | Yanez, J. M. | Hombre |
Universidad de Chile - Chile
Núcleo Milenio de Salmónidos Invasores - Chile Núcleo Milenio de Salmónidos Invasores Australes - Chile |
| 9 | Lopez, Maria E. | Mujer |
Universidad de Chile - Chile
Sveriges lantbruksuniversitet - Suecia |
| 10 | LHORENTE-CAUSSADE, JEAN PAUL | Hombre |
Benchmark Genetics Chile - Chile
Benchmark Genet Chile - Chile |
| 11 | JEDLICKI-CORBEAUX, ANA MARTINE | Mujer |
Universidad de Chile - Chile
|
| 12 | Soto, Jose A. | Hombre |
Swedish Univ Agr Sci - Suecia
Grp Acuacorporac Int GACI - Costa Rica Grupo Acuacorporacion Internacional (GACI) - Costa Rica |
| 13 | Salas, Diego | Hombre |
Swedish Univ Agr Sci - Suecia
Grp Acuacorporac Int GACI - Costa Rica Grupo Acuacorporacion Internacional (GACI) - Costa Rica |
| 14 | MAASS-SEPULVEDA, ALEJANDRO EDUARDO | Hombre |
UNIV EDINBURGH - Reino Unido
Universidad de Chile - Chile |
| Fuente |
|---|
| CORFO |
| Government of Chile |
| Corporación de Fomento de la Producción |
| Center for Mathematical Modeling |
| Center for Genome Regulation FONDAP |
| Basal Grant of the Center for Mathematical Modeling |
| Center for Mathematical Modeling AFB170001 |
| Aqua America and Aquacorporaci?n Internacional |
| Agradecimiento |
|---|
| We would like to acknowledge the Aqua America and Aquacorporaci?n Internacional for kindly providing the samples used in this work, and Gabriel Rizzato and Natal? Kunita from Aqua America and Diego Salas and Jos? Soto from Aquacorporaci?n International for their contribution of the samples from Brazil and Costa Rica, respectively. |