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Accuracy of genomic selection in simulated populations mimicking the extent of linkage disequilibrium in beef cattle

机译:模拟群体中模拟牛的连锁不平衡程度的基因组选择准确性

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Background The success of genomic selection depends mainly on the extent of linkage disequilibrium (LD) between markers and quantitative trait loci (QTL), the number of animals in the training set (TS) and the heritability (h2) of the trait. The extent of LD depends on the genetic structure of the population and the density of markers. The aim of this study was to calculate accuracy of direct genomic estimated breeding values (DGEBV) using best linear unbiased genomic prediction (GBLUP) for different marker densities, heritabilities and sizes of the TS in simulated populations that mimicked previously reported extent and pattern of LD in beef cattle. Results The accuracy of DGEBV increased significantly (p 2 (0.10, 0.25 or 0.40) and marker densities (40 k or 800 k). Increasing the number of animals in the TS by 4-fold and using their phenotypes to estimate marker effects was not sufficient to maintain or increase the accuracy of DGEBV obtained using estimated breeding values (EBVs) when the trait h2 was lower than 0.40 for both marker densities. Comparing to expected accuracies of parent average (PA), the gains by using DGEBV would be of 27%, 13% and 10% for trait h2 equal to 0.10, 0.25 and 0.40, respectively, considering the scenario with 40 k markers and 1920 bulls in TS. Conclusions As reported in dairy cattle, the size of the TS and the extent of LD have major impact on the accuracy of DGEBV. Based on the findings of this simulation study, large TS, as well as dense marker panels, aiming to increase the level of LD between markers and QTL, will likely be needed in beef cattle for successful implementation of genomic selection.
机译:背景技术基因组选择的成功主要取决于标记物与数量性状基因座(QTL)之间的连锁不平衡(LD)程度,训练集中的动物数量(TS)和遗传力(h 2 )的特征。 LD的程度取决于人群的遗传结构和标记的密度。这项研究的目的是使用最佳线性无偏基因组预测(GBLUP),在模拟种群中模拟先前报道的LD范围和模式的不同标记密度,遗传力和TS大小,计算直接基因组估计育种值(DGEBV)的准确性在肉牛。结果DGEBV的准确性显着提高(p 2 (0.10、0.25或0.40)和标记物密度(40 k或800 k),TS中的动物数量增加了4倍,并使用它们的表型进行估计当两个标记密度的h 2 性状均低于0.40时,标记效应不足以维持或提高使用估计育种值(EBV)获得的DGEBV的准确性。 PA),考虑到具有40 k个标记和1920个多头的情况,使用DGEBV获得的性状h 2 分别等于0.10、0.25和0.40,分别为27%,13%和10%。结论正如奶牛所报道的,TS的大小和LD的程度对DGEBV的准确性有重要影响,根据该模拟研究的结果,大TS和密集的标记面板旨在提高标记牛和QTL之间的LD水平,可能需要在肉牛中成功实施基因组选择

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