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Identification of quantitative trait loci for flowering time by a combination of restriction site–associated DNA sequencing and bulked segregant analysis in soybean

机译:结合限制性酶切位点DNA测序和大体积分离子分析技术鉴定开花时间的数量性状基因座

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Soybean ( Glycine max ) has a paleopolyploid genome, and many re-sequencing experiments to characterize soybean genotypes have been conducted using next-generation sequencing platforms. The accumulation of information about single nucleotide polymorphisms (SNPs) throughout the soybean genome has accelerated identification of genomic regions related to agronomically important traits through association studies. However, although many efficient mapping techniques that use next-generation sequencing are available, the number of practical approaches to identify genes/loci is still limited. In this study, we used a combination of restriction site–associated DNA sequencing (RAD-seq) and bulk segregant analysis (BSA) to identify quantitative trait locus (QTLs) for flowering time in a segregating population derived from a cross between Japanese soybean cultivars. Despite the homogeneous genetic background of the parents, over 7000 SNPs were identified and can be used to detect QTLs by RAD-seq BSA analysis. By comparing genotype frequency between early and late-flowering bulks from the F3 segregating population, we identified a QTL on Gm10, which corresponds to the previously identified E2 locus, and a QTL on Gm04, which is close to the E8 locus. Out of these SNPs, more than 2000 were easily converted to conventional DNA markers. Our approach would improve the efficiency of genetic mapping.
机译:大豆(Glycine max)具有古多倍体基因组,并且使用下一代测序平台进行了许多表征大豆基因型的重测序实验。通过关联研究,整个大豆基因组中有关单核苷酸多态性(SNP)的信息的积累加快了与农学重要性状有关的基因组区域的鉴定。但是,尽管可以使用许多使用下一代测序的有效作图技术,但是用于鉴定基因/基因座的实用方法的数量仍然有限。在这项研究中,我们结合了限制性位点相关的DNA测序(RAD-seq)和大量分离子分析(BSA)来鉴定来自日本大豆品种间杂交的分离群体中开花时间的数量性状基因座(QTL)。 。尽管父母的遗传背景相同,但已鉴定出超过7000个SNP,可用于RAD-seq BSA分析检测QTL。通过比较F 3 隔离种群的早花和晚花种群的基因型频率,我们在Gm10上鉴定了一个QTL,与先前鉴定的E2基因座相对应,在Gm04上鉴定了一个QTL,这与附近E8轨迹。在这些SNP中,有2000多个容易转化为常规DNA标记。我们的方法将提高基因作图的效率。

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