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Uncovering Genomic Regions Controlling Plant Architectural Traits in Hexaploid Wheat Using Different GWAS Models

Overview
Journal Sci Rep
Specialty Science
Date 2021 Mar 25
PMID 33762669
Citations 27
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Abstract

Wheat is a major food crop worldwide. The plant architecture is a complex trait mostly influenced by plant height, tiller number, and leaf morphology. Plant height plays a crucial role in lodging and thus affects yield and grain quality. In this study, a wheat population was genotyped by using Illumina iSelect 90K single nucleotide polymorphism (SNP) assay and finally 22,905 high-quality SNPs were used to perform a genome-wide association study (GWAS) for plant architectural traits employing four multi-locus GWAS (ML-GWAS) and three single-locus GWAS (SL-GWAS) models. As a result, 174 and 97 significant SNPs controlling plant architectural traits were detected by ML-GWAS and SL-GWAS methods, respectively. Among these SNP makers, 43 SNPs were consistently detected, including seven across multiple environments and 36 across multiple methods. Interestingly, five SNPs (Kukri_c34553_89, RAC875_c8121_1490, wsnp_Ex_rep_c66315_64480362, Ku_c5191_340, and tplb0049a09_1302) consistently detected across multiple environments and methods, played a role in modulating both plant height and flag leaf length. Furthermore, candidate SNPs (BS00068592_51, Kukri_c4750_452 and BS00022127_51) constantly repeated in different years and methods associated with flag leaf width and number of tillers. We also detected several SNPs (Jagger_c6772_80, RAC875_c8121_1490, BS00089954_51, Excalibur_01167_1207, and Ku_c5191_340) having common associations with more than one trait across multiple environments. By further appraising these GWAS methods, the pLARmEB and FarmCPU models outperformed in SNP detection compared to the other ML-GWAS and SL-GWAS methods, respectively. Totally, 152 candidate genes were found to be likely involved in plant growth and development. These finding will be helpful for better understanding of the genetic mechanism of architectural traits in wheat.

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References
1.
Quarrie S, Steed A, Calestani C, Semikhodskii A, Lebreton C, Chinoy C . A high-density genetic map of hexaploid wheat (Triticum aestivum L.) from the cross Chinese Spring x SQ1 and its use to compare QTLs for grain yield across a range of environments. Theor Appl Genet. 2005; 110(5):865-80. DOI: 10.1007/s00122-004-1902-7. View

2.
Ikeda M, Fujiwara S, Mitsuda N, Ohme-Takagi M . A triantagonistic basic helix-loop-helix system regulates cell elongation in Arabidopsis. Plant Cell. 2012; 24(11):4483-97. PMC: 3531847. DOI: 10.1105/tpc.112.105023. View

3.
Downie R, Bouvet L, Furuki E, Gosman N, Gardner K, Mackay I . Assessing European Wheat Sensitivities to Necrotrophic Effectors and Fine-Mapping the Locus Conferring Sensitivity to the Effector SnTox3. Front Plant Sci. 2018; 9:881. PMC: 6039772. DOI: 10.3389/fpls.2018.00881. View

4.
Muhammad A, Hu W, Li Z, Li J, Xie G, Wang J . Appraising the Genetic Architecture of Kernel Traits in Hexaploid Wheat Using GWAS. Int J Mol Sci. 2020; 21(16). PMC: 7460857. DOI: 10.3390/ijms21165649. View

5.
Liu L, Sun G, Ren X, Li C, Sun D . Identification of QTL underlying physiological and morphological traits of flag leaf in barley. BMC Genet. 2015; 16:29. PMC: 4373040. DOI: 10.1186/s12863-015-0187-y. View