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首页> 外文期刊>Theoretical and Applied Genetics: International Journal of Breeding Research and Cell Genetics >Multi-environment analysis of sorghum breeding trials using additive and dominance genomic relationships
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Multi-environment analysis of sorghum breeding trials using additive and dominance genomic relationships

机译:使用添加剂和优势基因组关系的高粱育种试验多环境分析

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Key message Multi-environment models using marker-based kinship information for both additive and dominance effects can accurately predict hybrid performance in different environments. Sorghum is an important hybrid crop that is grown extensively in many subtropical and tropical regions including Northern NSW and Queensland in Australia. The highly varying weather patterns in the Australian summer months mean that sorghum hybrids exhibit a great deal of variation in yield between locations. To ultimately enable prediction of the outcome of crossing parental lines, both additive effects on yield performance and dominance interaction effects need to be characterised. This paper demonstrates that fitting a linear mixed model that includes both types of effects calculated using genetic markers in relationship matrices improves predictions. Genotype by environment interactions was investigated by comparing FA1 (single-factor analytic) and FA2 (two-factor analytic) structures. The GxE causes a change in hybrid rankings between trials with a difference of up to 25% of the hybrids in the top 10% of each trial. The prediction accuracies increased with the addition of the dominance term (over and above that achieved with an additive effect alone) by an average of 15% and a maximum of 60%. The percentage of dominance of the total genetic variance varied between trials with the trials with higher broad-sense heritability having the greater percentage of dominance. The inclusion of dominance in the factor analytic models improves the accuracy of the additive effects. Breeders selecting high yielding parents for crossing need to be aware of effects due to environment and dominance.
机译:关键消息使用基于标记的亲属信息的钥匙消息多环境模型可以准确地预测不同环境中的混合性能。高粱是一个重要的混合作物,在许多亚热带和热带地区在澳大利亚北约司和昆士兰的许多亚热带和热带地区增长。澳大利亚夏季的高度不同的天气模式意味着高粱杂交种在地点之间的产量呈现大量变化。为了最终能够预测交叉父母线的结果,需要表征对产量性能和优势相互作用效应的添加剂效应。本文演示了拟合线性混合模型,其包括使用关系矩阵中的遗传标记计算的两种类型的效果改善了预测。通过比较Fai1(单因子分析)和Fa2(双因子分析)结构来研究通过环境相互作用的基因型。 GXE导致试验之间的混合排名变化,差异在每次试验中的10%的10%中差异高达25%的杂种。通过添加优势项(通过单独使用添加剂效果而已)的优势项(以上达到)增加预测精度增加了15%和最多60%。遗传方差总差异的百分比与试验之间的试验之间变化,具有较高的广义遗传性,具有较高百分比的优势。在分析模型中包含优势,提高了添加剂效应的准确性。选择高产父母的育种者需要意识到由于环境和优势导致的影响。

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