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Generalizing Terwilliger's likelihood approach: a new score statistic to test for genetic association

机译:概括Terwilliger的似然法:用于检验遗传关联的新评分统计

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Background: In this paper, we propose a one degree of freedom test for association between a candidate gene and a binary trait. This method is a generalization of Terwilliger's likelihood ratio statistic and is especially powerful for the situation of one associated haplotype. As an alternative to the likelihood ratio statistic, we derive a score statistic, which has a tractable expression. For haplotype analysis, we assume that phase is known. Results: By means of a simulation study, we compare the performance of the score statistic to Pearson's chi-square statistic and the likelihood ratio statistic proposed by Terwilliger. We illustrate the method on three candidate genes studied in the Leiden Thrombophilia Study. Conclusion: We conclude that the statistic follows a chi square distribution under the null hypothesis and that the score statistic is more powerful than Terwilliger's likelihood ratio statistic when the associated haplotype has frequency between 0.1 and 0.4 and has a small impact on the studied disorder. With regard to Pearson's chi-square statistic, the score statistic has more power when the associated haplotype has frequency above 0.2 and the number of variants is above five.
机译:背景:在本文中,我们提出了候选基因与二元性状之间关联的单自由度测试。该方法是Terwilliger似然比统计量的概括,对于一种关联单倍型的情况特别有用。作为似然比统计量的替代方法,我们得出了分数统计量,该统计量具有易于处理的表达式。对于单倍型分析,我们假设该阶段是已知的。结果:通过仿真研究,我们将得分统计量与Pearson卡方统计量和Terwilliger提出的似然比统计量的性能进行了比较。我们举例说明了在莱顿血栓形成研究中研究的三个候选基因的方法。结论:我们得出结论,在原假设下该统计量遵循卡方分布,并且当相关单倍型的频率在0.1到0.4之间并且对所研究的疾病影响较小时,分数统计量比Terwilliger的似然比统计量更有效。关于Pearson的卡方统计量,当相关单倍型的频率大于0.2且变异数大于5时,得分统计量具有更大的功效。

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