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Extreme sampling design in genetic association mapping of quantitative trait loci using balanced and unbalanced case-control samples

机译:平衡和不平衡病例对照样本在定量性状基因座遗传关联图谱中的极端抽样设计

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摘要

It is extremely expensive to conduct large sample size array- or sequencing based genome scale association studies. For a quantitative trait, an extreme case-control study design may improve the power and reduce the cost of variant calling. We investigated the performance of extreme study design when various proportions of samples are selected from the tails of phenotype distribution. Using simulations, we show that when risk genotypes become rare in the population and effect size is relatively small, it is beneficial to carry out an extreme sampling study. In particular, the number of selected cases and controls can even be unbalanced such that power is further increased, compared with a balanced selection. Our application to two data sets: methadone dose data and yearling weight data, demonstrated that similar results for full data analysis can be obtained using extreme sampling with only a fraction of the data. Using power analysis with simulated data and an experimental data application, we conclude that when full data is unavailable due to restricted budget, it is rewarding to employ an extreme sampling design in the sense that there can be immense cost reductions and qualitatively similar power as in the full data analysis.
机译:进行基于大样本大小的阵列或测序的基因组规模关联研究非常昂贵。对于定量特征,极端的病例对照研究设计可能会提高功能并降低变异调用的成本。当从表型分布的尾部选择不同比例的样本时,我们研究了极限研究设计的性能。通过模拟,我们显示出当风险基因型在人群中变得稀少且效应量较小时,进行极端抽样研究是有益的。特别地,与平衡选择相比,所选择的情况和控制的数量甚至可能不平衡,从而功率进一步增加。我们对两个数据集的应用:美沙酮剂量数据和一岁体重数据表明,仅使用极少一部分数据就可以进行极端采样,从而获得完整数据分析的相似结果。使用具有模拟数据的功率分析和实验数据应用程序,我们得出结论,当由于预算有限而无法获得全部数据时,采用极端采样设计是有意义的,因为这样做可以极大地降低成本,并且在质量上可以与之相比相似。完整的数据分析。

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