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利用 AMMI 和线性回归模型分析硬粒小麦的基因型-环境互作。

Use of AMMI and linear regression models to analyze genotype-environment interaction in durum wheat.

机构信息

Cereal Program, CIMMYT/ICARDA, P.O. Box 5466, Aleppo, Syria.

出版信息

Theor Appl Genet. 1992 Mar;83(5):597-601. doi: 10.1007/BF00226903.

Abstract

The joint durum wheat (Triticum turgidum L var 'durum') breeding program of the International Maize and Wheat Improvement Center (CIMMYT) and the International Center for Agricultural Research in the Dry Areas (ICARDA) for the Mediterranean region employs extensive multilocation testing. Multilocation testing produces significant genotype-environment (GE) interaction that reduces the accuracy for estimating yield and selecting appropriate germ plasm. The sum of squares (SS) of GE interaction was partitioned by linear regression techniques into joint, genotypic, and environmental regressions, and by Additive Main effects and the Multiplicative Interactions (AMMI) model into five significant Interaction Principal Component Axes (IPCA). The AMMI model was more effective in partitioning the interaction SS than the linear regression technique. The SS contained in the AMMI model was 6 times higher than the SS for all three regressions. Postdictive assessment recommended the use of the first five IPCA axes, while predictive assessment AMMI1 (main effects plus IPCA1). After elimination of random variation, AMMI1 estimates for genotypic yields within sites were more precise than unadjusted means. This increased precision was equivalent to increasing the number of replications by a factor of 3.7.

摘要

国际玉米和小麦改良中心(CIMMYT)和国际干旱地区农业研究中心(ICARDA)在为地中海地区联合开展的硬质小麦(Triticum turgidum L var 'durum')品种选育计划中进行了广泛的多点测试。多点测试会产生显著的基因型与环境(GE)互作,从而降低对产量的估计和选择合适种质的准确性。通过线性回归技术,GE 互作的离差平方和(SS)被划分为联合、基因型和环境回归,而通过加性主效和可乘互作(AMMI)模型则被划分为五个显著的互作主成分轴(IPCA)。AMMI 模型在划分互作 SS 方面比线性回归技术更有效。AMMI 模型中的 SS 比所有三个回归的 SS 高 6 倍。后验评估建议使用前五个 IPCA 轴,而预测评估则使用 AMMI1(主效加 IPCA1)。在消除随机变异后,AMMI1 对每个地点内的基因型产量的估计比未经调整的平均值更精确。这种提高的精度相当于将重复次数增加了 3.7 倍。

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