首页> 外文期刊>Molecular genetics and genomics: MGG >Mapping genomic loci for cotton plant architecture, yield components, and fiber properties in an interspecific (Gossypium hirsutum L. x G-barbadense L.) RIL population
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Mapping genomic loci for cotton plant architecture, yield components, and fiber properties in an interspecific (Gossypium hirsutum L. x G-barbadense L.) RIL population

机译:绘制棉种结构,产量成分和种间(Gossypium hirsutum L. x G-barbadense L.)RIL种群中纤维特性的基因组位点

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A quantitative trait locus (QTL) mapping was conducted to better understand the genetic control of plant architecture (PA), yield components (YC), and fiber properties (FP) in the two cultivated tetraploid species of cotton (Gossypium hirsutum L. and G. barbadense L.). One hundred and fifty-nine genomic regions were identified on a saturated genetic map of more than 2,500 SSR and SNP markers, constructed with an interspecific recombinant inbred line (RIL) population derived from the genetic standards of the respective cotton species (G. hirsutum acc. TM-1 x G. barbadense acc. 3-79). Using the single nonparametric and MQM QTL model mapping procedures, we detected 428 putative loci in the 159 genomic regions that confer 24 cotton traits in three diverse production environments [College Station F&B Road (FB), TX; Brazos Bottom (BB), TX; and Shafter (SH), CA]. These putative QTL loci included 25 loci for PA, 60 for YC, and 343 for FP, of which 3, 12, and 60, respectively, were strongly associated with the traits (LOD score a parts per thousand yen 3.0). Approximately 17.7 % of the PA putative QTL, 32.9 % of the YC QTL, and 48.3 % of the FP QTL had trait associations under multiple environments. The At subgenome (chromosomes 1-13) contributed 72.7 % of loci for PA, 46.2 % for YC, and 50.4 % for FP while the Dt subgenome (chromosomes 14-26) contributed 27.3 % of loci for PA, 53.8 % for YC, and 49.6 % for FP. The data obtained from this study augment prior evidence of QTL clusters or gene islands for specific traits or biological functions existing in several non-homoeologous cotton chromosomes. DNA markers identified in the 159 genomic regions will facilitate further dissection of genetic factors underlying these important traits and marker-assisted selection in cotton.
机译:进行了数量性状位点(QTL)定位,以更好地了解棉花的两个栽培四倍体物种(棉(Gossypium hirsutum L.)和G(G) 。barbadense L.)。在2500个SSR和SNP标记的饱和遗传图谱上鉴定了159个基因组区域,这些图谱是用源自各个棉花物种遗传标准的种间重组自交系(RIL)群体构建的(G. hirsutum acc TM-1 x G. barbadense acc。3-79)。使用单一的非参数和MQM QTL模型映射程序,我们在159个基因组区域中检测到428个推定基因座,这些基因座在三种不同的生产环境中提供了24个棉花特性[德克萨斯大学食品与饮料路(FB);德克萨斯州Brazos Bottom(BB);和Shafter(SH),CA]。这些推定的QTL基因座包括PA的25个基因座,YC的60个基因座和FP的343个基因座,其中3、12和60分别与性状密切相关(LOD分数为千分之3.0)。在多种环境下,大约有17.7%的PA假定QTL,32.9%的YC QTL和48.3%的FP QTL具有性状关联。 At亚基因组(染色体1-13)为PA贡献了72.7%的基因座,YC占46.2%,FP占50.4%,而Dt亚基因组(染色体14-26)为PA贡献了27.3%的基因座,YC占53.8%, FP为49.6%。从这项研究获得的数据增加了QTL簇或基因岛的先证,这些簇或基因岛存在于几种非同源棉染色体中的特定性状或生物学功能。在159个基因组区域中鉴定出的DNA标记将有助于进一步剖析构成这些重要性状的遗传因素以及棉花中标记辅助的选择。

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