用于估计每年多环境实地试验中大豆种子产量的遗传收益的模型
Matheus D Krause1, Hans-Peter Piepho2, Kaio O G Dias3
1Department of Agronomy, Iowa State University, Ames, IA, USA. krause.d.matheus@gmail.com.
概括
估计大豆育种的遗传收益需要仔细的模型选择,因为目前的方法显示了一些偏差. 使用多个线性混合模型为大豆种子产量改善提供了更可靠的实现遗传收益 (RGG) 估计范围.
科学领域:
- 农业科学 农业科学
- 遗传学 遗传学 是一个
- 植物育种 植物育种
背景情况:
- 像大豆种子产量这样的定量特征需要准确的方法来区分遗传和非遗传因素.
- 在育种计划中估计实现的遗传收益 (RGG) 对于评估进展至关重要.
研究的目的:
- 通过使用多环境试验 (MET) 评估用于大豆育种计划中估计RGG的线性混合模型.
- 在模拟条件下评估不同估计模型的偏差和线性.
主要方法:
- 对大豆育种计划进行了随机模拟.
- 真正的育种价值被模拟在一个无限小的模型下,用于大豆种子产量.
- 线性混合模型在各种MET条件下使用偏差和线性标准进行了评估.
主要成果:
- 所有评估的模型都在估计RGG时表现出一定程度的偏差.
- 协差建模和直接/间接估计模型产生了广泛的偏差RGG估计.
- 表现最好的模型的平均偏差约为1.2kg/ha/yr (0.02bu/ac/yr).
结论:
- 没有单一的线性混合模型能够为大豆种子产量提供公正的RGG估计.
- 建议使用多个选定的模型来获得一系列合理的RGG估计.
- 北美公共大豆育种计划在1989-2019年间实现了种子产量的显著RGG,从18.16到39.68公斤/公/年.
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