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首页> 外文期刊>Heredity: An International Journal of Genetics >An assessment of true and false positive detection rates of stepwise epistatic model selection as a function of sample size and number of markers
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An assessment of true and false positive detection rates of stepwise epistatic model selection as a function of sample size and number of markers

机译:作为样本大小和标记数量的逐步认证模型选择的真假阳性检测率的评估

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摘要

Association studies have been successful at identifying genomic regions associated with important traits, but routinely employ models that only consider the additive contribution of an individual marker. Because quantitative trait variability typically arises from multiple additive and non-additive sources, utilization of statistical approaches that include main and two-way interaction marker effects of several loci in one model could lead to unprecedented characterization of these sources. Here we examine the ability of one such approach, called the Stepwise Procedure for constructing an Additive and Epistatic Multi-Locus model (SPAEML), to detect additive and epistatic signals simulated using maize and human marker data. Our results revealed that SPAEML was capable of detecting quantitative trait nucleotides (QTNs) at sample sizes as low as n = 300 and consistently specifying signals as additive and epistatic for larger sizes. Sample size and minor allele frequency had a major influence on SPAEML's ability to distinguish between additive and epistatic signals, while the number of markers tested did not. We conclude that SPAEML is a useful approach for providing further elucidation of the additive and epistatic sources contributing to trait variability when applied to a small subset of genome-wide markers located within specific genomic regions identified using a priori analyses.
机译:协会研究在识别与重要特征相关的基因组区域,但通常使用只考虑个别标记的添加剂贡献的模型。因为定量性状可变性通常由多种添加剂和非添加剂来源产生,所以利用一个模型中几个基因座的主要和双向相互作用的统计方法的利用可能导致这些来源的前所未有的表征。在这里,我们检查一种这种方法的能力,称为构建添加剂和背景多基因座模型(SPAEM1)的逐步过程,以检测使用玉米和人类标记数据模拟的添加剂和认证信号。我们的结果表明,SPAEM1能够在样品尺寸下检测为低至n = 300的样本尺寸的定量性状核苷酸(QTNS),并一致地将信号指定为添加剂和超强尺寸。样品大小和次要等位基因频率对Spaeml区分添加剂和背景信号的能力产生了重大影响,而测试的标记数量没有。我们得出结论,SPAEML是一种有用的方法,用于提供有助于具有特征变异的添加剂和认识来源的进一步阐明,当应用于位于使用先验的特定基因组区域内的基因组宽标记的小副本时。

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