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基于因子分析线性混合模型的多环境植物育种试验中的基因组选择。

Genomic selection in multi-environment plant breeding trials using a factor analytic linear mixed model.

机构信息

National Institute for Applied Statistics Research Australia, Centre for Bioinformatics and Biometrics, University of Wollongong, Wollongong, New South Wales, Australia.

出版信息

J Anim Breed Genet. 2019 Jul;136(4):279-300. doi: 10.1111/jbg.12404.

Abstract

Genomic selection (GS) is a statistical and breeding methodology designed to improve genetic gain. It has proven to be successful in animal breeding; however, key points of difference have not been fully considered in the transfer of GS from animal to plant breeding. In plant breeding, individuals (varieties) are typically evaluated across a number of locations in multiple years (environments) in formally designed comparative experiments, called multi-environment trials (METs). The design structure of individual trials can be complex and needs to be modelled appropriately. Another key feature of MET data sets is the presence of variety by environment interaction (VEI), that is the differential response of varieties to a change in environment. In this paper, a single-step factor analytic linear mixed model is developed for plant breeding MET data sets that incorporates molecular marker data, appropriately accommodates non-genetic sources of variation within trials and models VEI. A recently developed set of selection tools, which are natural derivatives of factor analytic models, are used to facilitate GS for a motivating data set from an Australian plant breeding company. The power and versatility of these tools is demonstrated for the variety by environment and marker by environment effects.

摘要

基因组选择(GS)是一种旨在提高遗传增益的统计和育种方法。它已被证明在动物育种中是成功的;然而,在将 GS 从动物转移到植物育种时,并没有充分考虑到一些关键的差异点。在植物育种中,个体(品种)通常在多个地点和多年(环境)中进行评估,这些评估是在正式设计的比较实验中进行的,称为多环境试验(MET)。个体试验的设计结构可能很复杂,需要进行适当的建模。MET 数据集的另一个关键特征是品种与环境互作(VEI)的存在,即品种对环境变化的不同反应。在本文中,为植物育种 MET 数据集开发了一种单步因子分析线性混合模型,该模型包含分子标记数据,适当地在试验内和模型 VEI 中容纳非遗传变异源。最近开发的一组选择工具是因子分析模型的自然衍生工具,用于促进澳大利亚一家植物育种公司的激励数据集的 GS。这些工具的功能和多功能性通过品种与环境和标记与环境效应来展示。

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