首页> 外文期刊>Journal of Plant Studies >GGE-Biplot Analysis of Multi-Environment Yield Trials of Common Bean (Phaseolus vulgaris L.) in the southern Ethiopia
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GGE-Biplot Analysis of Multi-Environment Yield Trials of Common Bean (Phaseolus vulgaris L.) in the southern Ethiopia

机译:埃塞俄比亚南部普通豆(Phaseolus vulgaris L.)的多环境产量试验的GGE-Biplot分析

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The present study was conducted on thirty-six common beans (Phaseolus vulgaris L.) Genotypes across six contrasting environments defined for its different soil fertility status and located at the southern Ethiopia. The genotypes were arranged in 6 x 6 triple lattice design and executed for two successive main cropping seasons with the objectives to evaluate yield performance of common bean genotypes and identification of mega environments. GGE (i.e., G = genotype and GE = genotype by environment, interaction) bi-plot methodology was used for graphical presentation of yield data after subjecting the genotypic means of each environment to GGE Bi-plot software. The first two principal components (AXIS 1 and AXIS2) were used to display a two-dimensional GGE bi-plot. Thus, genotypic AXIS1 scores >0 classified the high yielding genotypes while AXIS2 scores <0 identified low yielding genotypes. Unlike genotypic AXIS1, genotypic AXIS2, scores near zero showed stable genotypes whereas large AXIS2 scores classified the unstable ones. The environmental AXIS1 were related to crossover nature of GEI while AXIS2 scores were associated with non-cross over GEI. The six test environments in the southern region were divided in to two distinct mega environments (Mega-1 and 2). Mega-1 constituted GOHF13, ARMF12 and ARLF13 while genotype 14 (SCR10) being the best winner, on the other hand, Mega-2 contained GOHF12 and while common bean genotype 20(SCR17) being the best winner. The results of this study indicated that breeding for specific adaptation should be taken as a breeding strategy in southern region to exploit positive GEI to increase production and productivity of common bean.
机译:本研究是在六个针对不同土壤肥力状况且位于埃塞俄比亚南部的对比环境中,对三十六种普通豆(菜豆)的基因型进行的。基因型以6 x 6三重格子设计排列,并在两个连续的主季进行,目的是评估普通豆基因型的产量表现和大型环境的鉴定。在将每种环境的基因型均值接受GGE Bi-plot软件处理后,使用GGE(即G =基因型,GE =通过环境,相互作用的基因型)双图方法对产量数据进行图形表示。前两个主要成分(AXIS 1和AXIS2)用于显示二维GGE双图。因此,> 0的基因型AXIS1分数将高产基因型分类,而<0的AXIS2分数将低产量的基因型分类。与基因型AXIS1,基因型AXIS2不同,接近零的分数显示稳定的基因型,而较大的AXIS2分数将不稳定的基因型分类。环境AXIS1与GEI的交叉特性有关,而AXIS2分数与非交叉GEI相关。南部地区的六个测试环境分为两个不同的大型环境(Mega-1和2)。 Mega-1构成GOHF13,ARMF12和ARLF13,而基因型14(SCR10)是最佳赢家,而Mega-2则包含GOHF12,而普通豆基因型20(SCR17)是最佳赢家。这项研究的结果表明,南部地区应采用适合特定育种的育种策略,以利用积极的GEI来提高普通豆的产量和生产力。

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