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Accuracy of Estimation of Genomic Breeding Values in Pigs Using Low-Density Genotypes and Imputation

机译:利用低密度基因型和推算估算猪基因组育种值的准确性

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摘要

Genomic selection has the potential to increase genetic progress. Genotype imputation of high-density single-nucleotide polymorphism (SNP) genotypes can improve the cost efficiency of genomic breeding value (GEBV) prediction for pig breeding. Consequently, the objectives of this work were to: (1) estimate accuracy of genomic evaluation and GEBV for three traits in a Yorkshire population and (2) quantify the loss of accuracy of genomic evaluation and GEBV when genotypes were imputed under two scenarios: a high-cost, high-accuracy scenario in which only selection candidates were imputed from a low-density platform and a low-cost, low-accuracy scenario in which all animals were imputed using a small reference panel of haplotypes. Phenotypes and genotypes obtained with the PorcineSNP60 BeadChip were available for 983 Yorkshire boars. Genotypes of selection candidates were masked and imputed using tagSNP in the GeneSeek Genomic Profiler (10K). Imputation was performed with BEAGLE using 128 or 1800 haplotypes as reference panels. GEBV were obtained through an animal-centric ridge regression model using de-regressed breeding values as response variables. Accuracy of genomic evaluation was estimated as the correlation between estimated breeding values and GEBV in a 10-fold cross validation design. Accuracy of genomic evaluation using observed genotypes was high for all traits (0.65−0.68). Using genotypes imputed from a large reference panel (accuracy: R2 = 0.95) for genomic evaluation did not significantly decrease accuracy, whereas a scenario with genotypes imputed from a small reference panel (R2 = 0.88) did show a significant decrease in accuracy. Genomic evaluation based on imputed genotypes in selection candidates can be implemented at a fraction of the cost of a genomic evaluation using observed genotypes and still yield virtually the same accuracy. On the other side, using a very small reference panel of haplotypes to impute training animals and candidates for selection results in lower accuracy of genomic evaluation.
机译:基因组选择有可能增加遗传进展。高密度单核苷酸多态性(SNP)基因型的基因型估算可以提高预测猪育种的基因组育种值(GEBV)的成本效率。因此,这项工作的目的是:(1)评估约克郡人群三个特征的基因组评估和GEBV的准确性,以及(2)量化在两种情况下推算基因型时基因组评估和GEBV准确性的损失。高成本,高精度场景,其中仅从低密度平台上推算选择候选者;而低成本,低精度场景,其中所有动物均使用小的单倍型参考群体推算。用PorcineSNP60 BeadChip获得的表型和基因型可用于983约克郡公猪。使用GeneSeek Genomic Profiler(10K)中的tagSNP屏蔽和估算选择候选基因型。使用BEAGLE进行插补,使用128或1800单体型作为参考面板。 GEBV是通过以降落的繁殖值作为响应变量的以动物为中心的岭回归模型获得的。基因组评估的准确性估计为在10倍交叉验证设计中估计的育种值与GEBV之间的相关性。对于所有性状,使用观察到的基因型进行基因组评估的准确性均很高(0.65-0.68)。使用从较大参考面板(准确度:R 2 = 0.95)中推论的基因型进行基因组评估不会显着降低准确性,而使用从较小参考面板(R 2 < / sup> = 0.88)确实显示出准确性的显着下降。基于选择的候选基因型的基因组评估可以用观察到的基因型进行基因组评估,而成本仅为基因组评估的一小部分,并且准确性仍然几乎相同。另一方面,使用非常小的单倍型参考面板来估算训练动物和选择候选物会导致基因组评估的准确性降低。

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