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Combined linkage disequilibrium and linkage mapping: Bayesian multilocus approach

机译:联合联系不平衡和联系测绘:贝叶斯多层方法

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Quantitative trait loci (QTL) affecting the phenotype of interest can be detected using linkage analysis (LA), linkage disequilibrium (LD) mapping or a combination of both (LDLA). The LA approach uses information from recombination events within the observed pedigree and LD mapping from the historical recombinations within the unobserved pedigree. We propose the Bayesian variable selection approach for combined LDLA analysis for single-nucleotide polymorphism (SNP) data. The novel approach uses both sources of information simultaneously as is commonly done in plant and animal genetics, but it makes fewer assumptions about population demography than previous LDLA methods. This differs from approaches in human genetics, where LDLA methods use LA information conditional on LD information or the other way round. We argue that the multilocus LDLA model is more powerful for the detection of phenotype-genotype associations than single-locus LDLA analysis. To illustrate the performance of the Bayesian multilocus LDLA method, we analyzed simulation replicates based on real SNP genotype data from small three-generational CEPH families and compared the results with commonly used quantitative transmission disequilibrium test (QTDT). This paper is intended to be conceptual in the sense that it is not meant to be a practical method for analyzing high-density SNP data, which is more common. Our aim was to test whether this approach can function in principle.
机译:可以使用连杆分析(LA),连接不平衡(LD)映射或(LDLA)的组合来检测影响感兴趣表型的定量性状基因座(QTL)。洛杉矶方法利用来自未观察到的血统内的历史重组的观察到的血统和LD映射中的重组事件中的信息。我们提出了对单核苷酸多态性(SNP)数据组合LDLA分析的贝叶斯变量选择方法。新颖的方法同时使用植物和动物遗传学中通常在植物和动物遗传学中进行的信息,但它比以前的LDLA方法造成了较少的关于人口统计学的假设。这与人类遗传学方法不同,其中LDLA方法在LD信息或其他方式上使用LA信息条件。我们认为,多层LDLA模型对于检测表型 - 基因型关联比单对位LDLA分析更强大。为了说明贝叶斯多焦点LDLA方法的性能,我们分析了基于来自小三代Ceph家族的真实SNP基因型数据的仿真复制,并将结果与​​常用的定量传播不平衡测试(QTDT)进行了比较。本文的意图是概念性的,这并不意味着分析高密度SNP数据的实用方法,这更为常见。我们的目的是测试这种方法是否可以原则上运作。

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