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Genomic Selection for Yield and Seed Protein Content in Soybean: A Study of Breeding Program Data and Assessment of Prediction Accuracy

机译:大豆产量和种子蛋白质含量的基因组选择:育种程序数据研究和预测准确性评估

摘要

Soybean [Glycine max (L.) Merr.] is a major crop with high seed protein content. Genomic selection is expected to be a valuable tool in improving the efficiency of breeding programs, especially for complex traits such as yield. This study aimed to evaluate the accuracy of genomic selection for yield and seed protein content in a soybean breeding population. Having a structured population, we compared genomic prediction accuracy obtained using models calibrated across or within two subpopulations: early lines and late lines. Calibrations within subpopulations were more efficient. Using a medium density of markers and genomic best linear unbiased prediction(GBLUP) model, which assumes an additive polygenic architecture, we predicted ~32 and39% of phenotypic variation among late lines for seed protein content and yield, respectively. Prediction accuracy was further improved by including epistasis in the GBLUP model. Further, we assessed accuracies obtained using several Bayesian models that assume different distributions for marker effects: Bayesian ridge regression, Bayesian LASSO, Bayes Cp, and Bayes R. Overall, these approaches did not improve prediction accuracy. In this study, were ported preliminary results relevant to the study of the efficiency of genomic selection use in a breeding program.
机译:大豆[Glycine max(L.)Merr。]是种子蛋白含量高的主要农作物。基因组选择有望成为提高育种程序效率的宝贵工具,尤其是对于诸如产量等复杂性状而言。这项研究旨在评估大豆育种群体中基因组选择对产量和种子蛋白质含量的准确性。有了结构化的种群,我们比较了使用跨两个亚群或在两个亚群中校正的模型获得的基因组预测准确性:早期品系和晚期品系。亚群内的校准更有效。使用中等密度的标记物和基因组最佳线性无偏预测(GBLUP)模型(假设一个加性多基因结构),我们预测后期品系中种子蛋白含量和产量的表型变异分别约为32%和39%。通过将上位性纳入GBLUP模型,可以进一步提高预测准确性。此外,我们评估了使用几种贝叶斯模型获得的准确性,这些模型假设标记效果的分布不同:贝叶斯岭回归,贝叶斯LASSO,贝叶斯Cp和贝叶斯R。总体而言,这些方法并未提高预测准确性。在这项研究中,移植了与育种计划中基因组选择使用效率研究相关的初步结果。

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