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Parametric model-based statistics for possible genotyping errors and sample stratification in sibling-pair SNP data.

机译:基于参数模型的统计数据,用于兄弟对SNP数据中可能的基因分型错误和样品分层。

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摘要

The detection of genotyping errors, based on apparent Mendelian incompatibilities in a sample of sib-pairs, is a complicated problem. In the case of a single marker and unknown parental genotypes, all combinations of sib-pair genotypes are self-consistent. Moreover, the observed deviation from equilibrium genotype frequencies may result from genotyping errors as well as from the sample's stratification. This in turn, may profoundly affect the results of association and linkage analyses, and therefore an estimation of these factors should be done beforehand. Here we present several parametric models, and using likelihood ratio statistics, we suggest a method of combined analysis of genotyping errors and a sample stratification for randomly ascertained sib-pair single nucleotide polymorphism (SNP) data. Specifically, we implemented two models of genotyping errors in either heterozygotes or homozygotes, and two models of sample stratification resulting from either the presence of families of different ethnic origin (e.g., a population admixture) or from a different ethnic origin of the parents in the family (e.g., intermarriage). The power of this method was established by Monte Carlo data simulation. The results clearly suggest that the proposed method is most efficient for detecting genotyping errors in heterozygotes, a common error caused by incorrect SNP data interpretation. We also provide an example of its application to real data.
机译:基于同胞对样本中明显的孟德尔不相容性来进行基因分型错误的检测是一个复杂的问题。在单个标记和未知的父母基因型的情况下,同胞对基因型的所有组合都是自洽的。此外,观察到的与平衡基因型频率的偏差可能是由于基因分型错误以及样品分层所致。反过来,这可能会深刻影响关联和链接分析的结果,因此,应事先对这些因素进行估算。在这里,我们介绍几个参数模型,并使用似然比统计数据,我们建议对基因型错误和样本分层进行组合分析的方法,用于随机确定的同胞对单核苷酸多态性(SNP)数据。具体而言,我们在杂合子或纯合子中实现了两种基因分型错误模型,以及两种样本分层的模型,这些模型是由于存在不同种族血统的家庭(例如,人口混合)或父母的不同种族血统而导致的。家庭(例如通婚)。该方法的功效是通过蒙特卡洛数据模拟确定的。结果清楚地表明,提出的方法对于检测杂合子中的基因分型错误是最有效的,这是由不正确的SNP数据解释引起的常见错误。我们还提供了将其应用于实际数据的示例。

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