Genomic selection models double the accuracy of predicted breeding values for bacterial cold water disease resistance compared to a traditional pedigree-based model in rainbow trout aquaculture
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Kyle E. Martin | James E. Parsons | Roger L. Vallejo | Timothy D. Leeds | Guangtu Gao | Jason P. Evenhuis | Breno O. Fragomeni | Gregory D. Wiens | Yniv Palti
[1] Heather L. Wieman,et al. Evaluation of family growth response to fishmeal and gluten-based diets in rainbow trout (Oncorhynchus mykiss) , 2006 .
[2] J. Dekkers,et al. Prediction of response to marker-assisted and genomic selection using selection index theory. , 2007, Journal of animal breeding and genetics = Zeitschrift fur Tierzuchtung und Zuchtungsbiologie.
[3] M. Goddard,et al. Prediction of total genetic value using genome-wide dense marker maps. , 2001, Genetics.
[4] P. VanRaden,et al. Invited review: reliability of genomic predictions for North American Holstein bulls. , 2009, Journal of dairy science.
[5] P. McKeigue,et al. Mapping genes that underlie ethnic differences in disease risk: methods for detecting linkage in admixed populations, by conditioning on parental admixture. , 1998, American journal of human genetics.
[6] Rohan L Fernando,et al. A class of Bayesian methods to combine large numbers of genotyped and non-genotyped animals for whole-genome analyses , 2014, Genetics Selection Evolution.
[7] Hans H. Cheng,et al. Fine mapping of QTL and genomic prediction using allele-specific expression SNPs demonstrates that the complex trait of genetic resistance to Marek’s disease is predominantly determined by transcriptional regulation , 2015, BMC Genomics.
[8] M. Goddard,et al. Using the genomic relationship matrix to predict the accuracy of genomic selection. , 2011, Journal of animal breeding and genetics = Zeitschrift fur Tierzuchtung und Zuchtungsbiologie.
[9] C. Rexroad,et al. Estimates of linkage disequilibrium and effective population size in rainbow trout , 2009, BMC Genetics.
[10] L. D. Vleck,et al. Genetics for the Animal Sciences , 1987 .
[11] J. Woolliams,et al. The Impact of Genetic Architecture on Genome-Wide Evaluation Methods , 2010, Genetics.
[12] K. Gharbi,et al. Genome wide association and genomic prediction for growth traits in juvenile farmed Atlantic salmon using a high density SNP array , 2015, BMC Genomics.
[13] R. Fernando,et al. Implementation of genomic selection in the poultry industry , 2016 .
[14] G. Wiens,et al. Detection of QTL in Rainbow Trout Affecting Survival When Challenged with Flavobacterium psychrophilum , 2014, Marine Biotechnology.
[15] F. Haesebrouck,et al. Flavobacterium psychrophilum infections in salmonid fish. , 2003, Journal of fish diseases.
[16] Alvaro G. Hernandez,et al. Identification of single nucleotide polymorphism markers associated with bacterial cold water disease resistance and spleen size in rainbow trout , 2015, Front. Genet..
[17] R. Fernando,et al. Response and inbreeding from a genomic selection experiment in layer chickens , 2015, Genetics Selection Evolution.
[18] G. Rosa,et al. Study of stayability in Nellore cows using a threshold model. , 2007, Journal of animal science.
[19] Robert D Schnabel,et al. Comparison of Bayesian models to estimate direct genomic values in multi-breed commercial beef cattle , 2015, Genetics Selection Evolution.
[20] S. Omholt,et al. A linkage map of the Atlantic salmon (Salmo salar) based on EST-derived SNP markers , 2008, BMC Genomics.
[21] T. Meuwissen,et al. A low-marker density implementation of genomic selection in aquaculture using within-family genomic breeding values , 2013, Genetics Selection Evolution.
[22] M. Goddard. Genomic selection: prediction of accuracy and maximisation of long term response , 2009, Genetica.
[23] V. Ducrocq,et al. Rainbow trout resistance to bacterial cold-water disease is moderately heritable and is not adversely correlated with growth. , 2009, Journal of animal science.
[24] R. Fernando,et al. Implementing a QTL detection study (GWAS) using genomic prediction methodology. , 2013, Methods in molecular biology.
[25] T A Cooper,et al. The genomic evaluation system in the United States: past, present, future. , 2011, Journal of dairy science.
[26] W. Muir,et al. Genome-wide association mapping including phenotypes from relatives without genotypes. , 2012, Genetics research.
[27] J. Woolliams,et al. Inbreeding in genome-wide selection. , 2007, Journal of animal breeding and genetics = Zeitschrift fur Tierzuchtung und Zuchtungsbiologie.
[28] P. Visscher,et al. Increased accuracy of artificial selection by using the realized relationship matrix. , 2009, Genetics research.
[29] D. Goldstein,et al. Consistent long-range linkage disequilibrium generated by admixture in a Bantu-Semitic hybrid population. , 2000, American journal of human genetics.
[30] K. Weiss,et al. Admixture as a tool for finding linked genes and detecting that difference from allelic association between loci. , 1988, Proceedings of the National Academy of Sciences of the United States of America.
[31] T. Welch,et al. Assessment of Genetic Correlation between Bacterial Cold Water Disease Resistance and Spleen Index in a Domesticated Population of Rainbow Trout: Identification of QTL on Chromosome Omy19 , 2013, PloS one.
[32] Guosheng Su,et al. A common reference population from four European Holstein populations increases reliability of genomic predictions , 2011, Genetics Selection Evolution.
[33] Alvaro G. Hernandez,et al. Detection and Validation of QTL Affecting Bacterial Cold Water Disease Resistance in Rainbow Trout Using Restriction-Site Associated DNA Sequencing , 2015, PloS one.
[34] M. Lund,et al. Genomic prediction when some animals are not genotyped , 2010, Genetics Selection Evolution.
[35] T. Meuwissen,et al. Genomic prediction in an admixed population of Atlantic salmon (Salmo salar) , 2014, Front. Genet..
[36] M. Calus,et al. Updating the reference population to achieve constant genomic prediction reliability across generations. , 2016, Animal : an international journal of animal bioscience.
[37] M. Plummer,et al. CODA: convergence diagnosis and output analysis for MCMC , 2006 .
[38] Ignacy Misztal,et al. Single Step, a general approach for genomic selection , 2014 .
[39] T. Welch,et al. Response to selection for bacterial cold water disease resistance in rainbow trout. , 2010, Journal of animal science.
[40] T. Meuwissen,et al. Testing strategies for genomic selection in aquaculture breeding programs , 2009, Genetics Selection Evolution.
[41] Cedric Gondro,et al. Genome-Wide Association Studies and Genomic Prediction , 2013, Methods in Molecular Biology.
[42] D. Garrick,et al. Accuracies of direct genomic breeding values in Hereford beef cattle using national or international training populations. , 2013, Journal of animal science.
[43] J. Stephens,et al. Mapping by admixture linkage disequilibrium in human populations: limits and guidelines. , 1994, American journal of human genetics.
[44] T. Welch,et al. Evidence of major genes affecting resistance to bacterial cold water disease in rainbow trout using Bayesian methods of segregation analysis. , 2010, Journal of animal science.
[45] M. Calus,et al. Reliability of direct genomic values for animals with different relationships within and to the reference population. , 2012, Journal of dairy science.
[46] Dorian Garrick,et al. Bayesian methods applied to GWAS. , 2013, Methods in molecular biology.
[47] M. Lund,et al. Impact of relationships between test and training animals and among training animals on reliability of genomic prediction. , 2015, Journal of animal breeding and genetics = Zeitschrift fur Tierzuchtung und Zuchtungsbiologie.
[48] H. Grüneberg,et al. Introduction to quantitative genetics , 1960 .
[49] R. Fernando,et al. Prediction of Complex Human Traits Using the Genomic Best Linear Unbiased Predictor , 2013, PLoS genetics.
[50] I Misztal,et al. Hot topic: a unified approach to utilize phenotypic, full pedigree, and genomic information for genetic evaluation of Holstein final score. , 2010, Journal of dairy science.
[51] M. Goddard,et al. Invited review: Genomic selection in dairy cattle: progress and challenges. , 2009, Journal of dairy science.
[52] S. Lien,et al. The development and characterization of a 57K single nucleotide polymorphism array for rainbow trout , 2015, Molecular ecology resources.
[53] Hans D. Daetwyler,et al. Accuracy of Predicting the Genetic Risk of Disease Using a Genome-Wide Approach , 2008, PloS one.
[54] Alan Agresti,et al. Categorical Data Analysis , 2003 .
[56] Alvaro G. Hernandez,et al. Evaluation of Genome-Enabled Selection for Bacterial Cold Water Disease Resistance Using Progeny Performance Data in Rainbow Trout: Insights on Genotyping Methods and Genomic Prediction Models , 2016, Front. Genet..
[57] R. Fernando,et al. The Impact of Genetic Relationship Information on Genome-Assisted Breeding Values , 2007, Genetics.
[58] Michael E. Goddard,et al. Genomic selection: A paradigm shift in animal breeding , 2016 .
[59] M. Barnes,et al. A Review of Flavobacterium Psychrophilum Biology, Clinical Signs, and Bacterial Cold Water Disease Prevention and Treatment , 2011 .
[60] E. Boerwinkle,et al. Population structure in admixed populations: effect of admixture dynamics on the pattern of linkage disequilibrium. , 2001, American journal of human genetics.