生物
种质资源
全基因组关联研究
单核苷酸多态性
数量性状位点
遗传学
遗传关联
候选基因
特质
驯化
等位基因
基因型
性状
SNP公司
进化生物学
表型
基因
农学
程序设计语言
计算机科学
作者
Yangyang Liu,Jun Chen,Changbin Yin,Ziying Wang,He Wu,Kuocheng Shen,Zhiliang Zhang,Lipeng Kang,Song Xu,Aoyue Bi,Xuebo Zhao,Daxing Xu,Zhonghu He,Xueyong Zhang,Chenyang Hao,Jianhui Wu,Yan Gong,Xuchang Yu,Zhiwen Sun,Botao Ye
出处
期刊:Genome Biology
[BioMed Central]
日期:2023-08-28
卷期号:24 (1): 196-196
被引量:41
标识
DOI:10.1186/s13059-023-03044-2
摘要
BACKGROUND: Large-scale genotype-phenotype association studies of crop germplasm are important for identifying alleles associated with favorable traits. The limited number of single-nucleotide polymorphisms (SNPs) in most wheat genome-wide association studies (GWASs) restricts their power to detect marker-trait associations. Additionally, only a few genes regulating grain number per spikelet have been reported due to sensitivity of this trait to variable environments. RESULTS: We perform a large-scale GWAS using approximately 40 million filtered SNPs for 27 spike morphology traits. We detect 132,086 significant marker-trait associations and the associated SNP markers are located within 590 associated peaks. We detect additional and stronger peaks by dividing spike morphology into sub-traits relative to GWAS results of spike morphology traits. We propose that the genetic dissection of spike morphology is a powerful strategy to detect signals for grain yield traits in wheat. The GWAS results reveal that TaSPL17 positively controls grain size and number by regulating spikelet and floret meristem development, which in turn leads to enhanced grain yield per plant. The haplotypes at TaSPL17 indicate geographical differentiation, domestication effects, and breeding selection. CONCLUSION: Our study provides valuable resources for genetic improvement of spike morphology and a fast-forward genetic solution for candidate gene detection and cloning in wheat.
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