Bread wheat is a vital crop for Ethiopia’s food security, with expanding cultivation driven by variety development efforts and strategic national initiatives. This study presents a multi-environment trial (MET) analysis to evaluate the genetic performance of 140 unique bread wheat genotypes, using data from 20 trials conducted across Ethiopia’s major wheat-growing regions. Each trial was designed using a row-column design (RCD) arranged in a rectangular array of plots. Four traits —grain yield (GYLD), hectoliter weight (HLW), days to heading (DTH), and thousand kernel weight (TKW) were considered in the analysis. We fitted a factor analytic linear mixed model (FAMM) based on a one-stage approach. Spatial models were fitted to account for field trends, while factor analytic (FA) model was used to model genotype-by-environment (G × E) effects. Model comparisons showed that the FA model consistently outperformed the diagonal (DIAG) model across all traits, offering greater flexibility capturing the variation in G × E effects. Heritability estimates were generally high, especially for DTH, which also showed strong genetic correlations across environments highlighting its reliability as a selection trait. In contrast, yield-related traits exhibited complex G × E patterns and variable heritability, reflecting their polygenic nature and environmental sensitivity. While the highest-yielding check variety, Balcha, retained its lead in GYLD, three genotypes—EBW202104, EBW202110, and EBW193155—demonstrated stable and competitive performance across environments for multiple traits, particularly grain quality and maturity. This makes them strong candidates for varietal release and registration for commercial production in Ethiopia. Future research should integrate genomic and environmental data.
N. Geleta, Tarekegn Argaw, Bayisa Asefa et al.· Discover Agriculture· 0 citations
The experiment was conducted at four locations over two years, from June, 2023 to December, 2024. The study evaluated the performance of 30 bread wheat (Triticum aestivum L.) varieties across seven Ethiopian agro-ecological environments during the 2023–2024 cropping season. The objective of the study was to identify high-yielding, stable, and disease-tolerant bread wheat genotypes suitable for sustainable wheat production across diverse Ethiopian agro-ecological environments. The combined analysis of variance revealed that the environment contributed the largest proportion of the total variation (74.51%), followed by genotype×environment interaction (19.77%), whereas genotypic differences accounted for only 5.71% of the variation. Grain yield ranged from 5.45 t ha-1 for Digalu to 7.51 t ha-1 for Kulumsa in 2023, with newer wheat varieties consistently outperforming older cultivars. The GGE biplot analysis revealed that the first two principal components explained 71.94% of the genotype×environment interaction (G×E) variation, confirming the reliability of the model for assessing genotype stability and adaptability across environments. Newly released varieties such as Kulumsa, Deka, Honqolo, and Balcha demonstrated superior grain yield and desirable agronomic traits, whereas older varieties such as Digalu, Dashen, and Kubsa showed relatively lower performance. These findings highlight the genetic progress achieved through Ethiopian wheat breeding programs and emphasize the importance of continuous variety evaluation to sustain wheat productivity under changing agro-ecological conditions.
Berhanu Sime, Gadisa Alemu, Alemu Dabi et al.· International Journal of Bio...· 0 citations
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