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甜菜(Beta vulgaris L.)的多性状关联图谱分析

Multi-trait association mapping in sugar beet (Beta vulgaris L.).

作者信息

Stich Benjamin, Piepho Hans-Peter, Schulz Britta, Melchinger Albrecht E

机构信息

Institute for Plant Breeding, Seed Science, and Population Genetics, University of Hohenheim, 70593 Stuttgart, Germany.

出版信息

Theor Appl Genet. 2008 Oct;117(6):947-54. doi: 10.1007/s00122-008-0834-z. Epub 2008 Jul 24.

Abstract

Association mapping promises to overcome the limitations of linkage mapping methods. The main objective of this study was to examine the applicability of multivariate association mapping with an empirical data set of sugar beet. A total of 111 diploid sugar beet inbreds was selected from the seed parent heterotic pool to represent a broad diversity with respect to sugar content (SC). The inbreds were genotyped with 26 simple sequence repeat markers chosen according to their map positions in proximity to previously identified quantitative trait loci for SC. For SC and beet yield (BY), the genotypic variances were highly significant (P < 0.01). Based on the global test of the bivariate mixed-model approach, four markers were significantly associated with SC, BY, or both at a false discovery rate of 0.025. All four markers were significantly (P < 0.05) associated with BY but only two with SC. The identification of markers associated with SC, BY, or both indicated that association mapping can be successfully applied in a sugar beet breeding context for detection of marker-phenotype associations. Furthermore, based on our results multivariate association mapping can be recommended as a promising tool to discriminate with a high mapping resolution between pleiotropy and linkage as reasons for co-localization of marker-phenotype associations for different traits.

摘要

关联作图有望克服连锁作图方法的局限性。本研究的主要目的是利用甜菜的经验数据集检验多变量关联作图的适用性。从种子亲本杂种优势群中选出111个二倍体甜菜自交系,以代表在含糖量(SC)方面具有广泛的多样性。根据它们在先前确定的SC数量性状位点附近的图谱位置,选择26个简单序列重复标记对这些自交系进行基因分型。对于SC和甜菜产量(BY),基因型方差高度显著(P < 0.01)。基于双变量混合模型方法的全局检验,在错误发现率为0.025时,有四个标记与SC、BY或两者显著相关。所有四个标记都与BY显著相关(P < 0.05),但与SC显著相关的只有两个。与SC、BY或两者相关的标记的鉴定表明,关联作图可以成功应用于甜菜育种背景下,以检测标记-表型关联。此外,基于我们的结果,多变量关联作图可作为一种有前景的工具被推荐,用于以高分辨率区分多效性和连锁,作为不同性状标记-表型关联共定位的原因。

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