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Mixed Model, AMMI and Eberhart-Russel Comparison via Simulation on Genotype × Environment Interaction Study in Sugarcane

机译:甘蔗基因型×环境互作研究模拟的混合模型,AMMI和Eberhart-Russel比较

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摘要

Brazil is the world leader in sugarcane production and the largest sugar exporter. Developing new varieties is one of the main factors that contribute to yield increase. In order to select the best genotypes, during the final selection stage, varieties are tested in different environments (locations and years), and breeders need to estimate the phenotypic performance for main traits such as tons of cane yield per hectare (TCH) considering the genotype × environment interaction (GEI) effect. Geneticists and biometricians have used different methods and there is no clear consensus of the best method. In this study, we present a comparison of three methods, viz. Eberhart-Russel (ER), additive main effects and multiplicative interaction (AMMI) and mixed model (REML/BLUP), in a simulation study performed in the R computing environment to verify the effectiveness of each method in detecting GEI, and assess the particularities of each method from a statistical standpoint. In total, 63 cases representing different conditions were simulated, generating more than 34 million data points for analysis by each of the three methods. The results show that each method detects GEI differently in a different way, and each has some limitations. All three methods detected GEI effectively, but the mixed model showed higher sensitivity. When applying the GEI analysis, firstly it is important to verify the assumptions inherent in each method and these limitations should be taken into account when choosing the method to be used.
机译:巴西是甘蔗生产的世界领先者,也是最大的食糖出口国。开发新品种是促成单产增加的主要因素之一。为了选择最佳基因型,在最后选择阶段,要在不同的环境(地点和年份)中测试品种,育种者需要估算主要性状的表型表现,例如每公顷甘蔗产量(TCH),基因型×环境相互作用(GEI)效应。遗传学家和生物统计学家使用了不同的方法,而最佳方法尚无明确共识。在这项研究中,我们提出了三种方法的比较,即。 Eberhart-Russel(ER),加性主效应和乘性交互作用(AMMI)和混合模型(REML / BLUP),在R计算环境中进行的模拟研究中,以验证每种方法在检测GEI方面的有效性,并评估其特殊性从统计角度讲每种方法。总共模拟了63个代表不同情况的案例,通过这三种方法分别生成了超过3400万个数据点进行分析。结果表明,每种方法对GEI的检测方式不同,每种方法都有一定的局限性。三种方法均能有效检测GEI,但混合模型显示出更高的灵敏度。在应用GEI分析时,首先重要的是要验证每种方法固有的假设,并且在选择要使用的方法时应考虑这些限制。

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