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Single-Step BLUP with Varying Genotyping Effort in Open-Pollinated Picea glauca

机译:具有开放基因型青云杉的基因分型努力的单步BLUP

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摘要

Maximization of genetic gain in forest tree breeding programs is contingent on the accuracy of the predicted breeding values and precision of the estimated genetic parameters. We investigated the effect of the combined use of contemporary pedigree information and genomic relatedness estimates on the accuracy of predicted breeding values and precision of estimated genetic parameters, as well as rankings of selection candidates, using single-step genomic evaluation (HBLUP). In this study, two traits with diverse heritabilities [tree height (HT) and wood density (WD)] were assessed at various levels of family genotyping efforts (0, 25, 50, 75, and 100%) from a population of white spruce (Picea glauca) consisting of 1694 trees from 214 open-pollinated families, representing 43 provenances in Québec, Canada. The results revealed that HBLUP bivariate analysis is effective in reducing the known bias in heritability estimates of open-pollinated populations, as it exposes hidden relatedness, potential pedigree errors, and inbreeding. The addition of genomic information in the analysis considerably improved the accuracy in breeding value estimates by accounting for both Mendelian sampling and historical coancestry that were not captured by the contemporary pedigree alone. Increasing family genotyping efforts were associated with continuous improvement in model fit, precision of genetic parameters, and breeding value accuracy. Yet, improvements were observed even at minimal genotyping effort, indicating that even modest genotyping effort is effective in improving genetic evaluation. The combined utilization of both pedigree and genomic information may be a cost-effective approach to increase the accuracy of breeding values in forest tree breeding programs where shallow pedigrees and large testing populations are the norm.
机译:林木育种计划中遗传增益的最大化取决于预测育种值的准确性和估计遗传参数的精度。我们使用单步基因组评估(HBLUP),研究了当代谱系信息和基因组相关性估计值结合使用对预测的育种值的准确性和估计的遗传参数的精度以及选择候选者的排名的影响。在这项研究中,从白云杉种群的家庭基因分型工作的各个水平(0%,25%,50%,75%和100%)评估了具有不同遗传力的两个性状[树高(HT)和木材密度(WD)] (Picea glauca)由来自214个开放授粉家庭的1694棵树组成,代表加拿大魁北克省的43个种源。结果表明,HBLUP双变量分析有效地减少了开放传粉种群遗传力估计的已知偏差,因为它揭示了隐藏的相关性,潜在的谱系错误和近亲繁殖。在分析中添加基因组信息,可以通过考虑仅由当代谱系无法捕获的孟德尔采样和历史同盟关系而大大提高了育种价值估算的准确性。越来越多的家庭基因分型工作与模型拟合,遗传参数精度和育种价值准确性的不断提高有关。然而,即使在最小的基因分型工作量下也观察到了改善,这表明即使适度的基因分型工作也可以有效地改善遗传评价。家谱和基因组信息的结合利用可能是一种经济有效的方法,可以提高以浅系谱和大量试验种群为标准的林木育种计划中育种值的准确性。

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