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Threshold Models for Genome-Enabled Prediction of Ordinal Categorical Traits in Plant Breeding

机译:具有基因组功能的预测的阈值模型 植物育种中序数分类性状的研究进展

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摘要

Categorical scores for disease susceptibility or resistance often are recorded in plant breeding. The aim of this study was to introduce genomic models for analyzing ordinal characters and to assess the predictive ability of genomic predictions for ordered categorical phenotypes using a threshold model counterpart of the Genomic Best Linear Unbiased Predictor (i.e., TGBLUP). The threshold model was used to relate a hypothetical underlying scale to the outward categorical response. We present an empirical application where a total of nine models, five without interaction and four with genomic x environment interaction (G·E) and genomic additive x additive x environment interaction (GxGxE), were used. We assessed the proposed models using data consisting of 278 maize lines genotyped with 46,347 single-nucleotide polymorphisms and evaluated for disease resistance [with ordinal scores from 1 (no disease) to 5 (complete infection)] in three environments (Colombia, Zimbabwe, and Mexico). Models with GxE captured a sizeable proportion of the total variability, which indicates the importance of introducing interaction to improve prediction accuracy. Relative to models based on main effects only, the models that included GxE achieved 9–14% gains in prediction accuracy; adding additive x additive interactions did not increase prediction accuracy consistently across locations.
机译:通常在植物育种中记录疾病易感性或抗药性的分类评分。这项研究的目的是引入基因组模型来分析序数特征,并使用与基因组最佳线性无偏预测子(TGBLUP)相对应的阈值模型来评估有序分类表型的基因组预测的预测能力。阈值模型用于将假设的基础量表与向外的分类响应相关联。我们提出了一个经验应用程序,总共使用了9个模型,其中5个没有相互作用,而4个具有基因组x环境相互作用(G·E)和基因组加法x加法x环境相互作用(GxGxE)。我们使用由278个具有46,347个单核苷酸多态性基因型的玉米品系组成的数据评估了建议的模型,并评估了在三种环境(哥伦比亚,津巴布韦和哥伦比亚)中的抗病性[顺序评分从1(无疾病)到5(完全感染)]。墨西哥)。具有GxE的模型在总可变性中占据了相当大的比例,这表明引入交互作用以提高预测准确性的重要性。相对于仅基于主效应的模型,包含GxE的模型的预测精度提高了9–14%;添加添加剂x添加剂相互作用不会在各个位置一致地提高预测准确性。

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