Scientific Journal

Genome-Wide Association Study and Genomic Estimated Breeding Values of Grain Yield in Bread Wheat Cultivars Under Normal and Rainfed Irrigation Conditions

Document Type : Original Article

Authors

Department of Plant Production and Genetics, Faculty of Agriculture, Urmia University, Urmia, Iran

10.22034/pgr.2026.2083043.1029
Abstract
Genomic selection represents one of the most significant advances in the early 21st century plant and animal breeding. To estimate breeding values and identify desirable genotypes, 81 commercial bread wheat cultivars were evaluated during the 2018–2019 growing season under well-watered (normal irrigation) and rainfed conditions. The experiment was conducted using a simple lattice design at the research fields of the Dryland Agricultural Research Institute, Maragheh, Iran. After SNP calling and the removal of markers with more than 10% missing data and a minor allele frequency below 10%, a total of 37,990 SNPs were retained for genomic selection analyses in both environmental conditions. Results indicated that Bayesian methods exhibited higher accuracy and performance. Based on cluster and principal component analyses, under normal irrigation, the cultivars Gahar, Arta, Adl, Pishtaz, Chamran 2, Tajan, and Atrak were identified as desirable in terms of breeding values and grain yield. Under rainfed conditions, the cultivars Maroon, Hamoon, Reyhani, Azadi, Atrak, Inia, Golestan, Naz, and Frontana were selected as superior genotypes. A genome-wide association study (GWAS) using the mixed linear model (MLM) identified 503 and 394 marker–trait associations under normal irrigation and rainfed conditions, respectively. Key markers consistently associated with grain yield and related traits across both conditions included rs63088, rs58821, rs16655, rs20678, rs23370, and rs51942. Gene ontology analysis of significant SNPs identified four key pathways associated with drought adaptation and tolerance in wheat: phenylalanine ammonia-lyase (PAL) on chromosome 2B, arginine and proline metabolism on chromosome 5A, lipid peroxidation such as sphingolipids on chromosome 3D, and lipoic acid metabolism on chromosome 5B.

Keywords

Subjects

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