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对甜菜农艺性状的全基因组关联作图。

Genome-wide association mapping of agronomic traits in sugar beet.

机构信息

State Plant Breeding Institute, University of Hohenheim, 70593, Stuttgart, Germany.

出版信息

Theor Appl Genet. 2011 Nov;123(7):1121-31. doi: 10.1007/s00122-011-1653-1. Epub 2011 Jul 15.

Abstract

Recent results indicate that association mapping in populations from applied plant breeding is a powerful tool to detect QTL which are of direct relevance for breeding. The focus of this study was to unravel the genetic architecture of six agronomic traits in sugar beet. To this end, we employed an association mapping approach, based on a very large population of 924 elite sugar beet lines from applied plant breeding, fingerprinted with 677 single nucleotide polymorphism (SNP) markers covering the entire genome. We show that in this population linkage disequilibrium decays within a short genetic distance and is sufficient for the detection of QTL with a large effect size. To increase the QTL detection power and the mapping resolution a much higher number of SNPs is required. We found that for QTL detection, the mixed model including only the kinship matrix performed best, even in the presence of a considerable population structure. In genome-wide scans, main effect QTL and epistatic QTL were detected for all six traits. Our full two-dimensional epistasis scan revealed that for complex traits there appear to be epistatic master regulators, loci which are involved in a large number of epistatic interactions throughout the genome.

摘要

最近的结果表明,应用植物育种群体中的关联作图是检测与育种直接相关的 QTL 的有力工具。本研究的重点是揭示甜菜 6 个农艺性状的遗传结构。为此,我们采用了一种关联作图方法,该方法基于来自应用植物育种的 924 条优秀甜菜品系的大型群体,这些品系由覆盖整个基因组的 677 个单核苷酸多态性 (SNP) 标记进行指纹识别。我们表明,在该群体中,连锁不平衡在短遗传距离内衰减,足以检测到具有大效应大小的 QTL。为了提高 QTL 检测能力和图谱分辨率,需要更多的 SNP。我们发现,对于 QTL 检测,仅包含亲缘关系矩阵的混合模型表现最佳,即使存在相当大的群体结构也是如此。在全基因组扫描中,检测到了所有 6 个性状的主效 QTL 和上位性 QTL。我们的全二维上位性扫描表明,对于复杂性状,似乎存在上位性主调控因子,这些因子参与了整个基因组中大量的上位性相互作用。

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