首页> 外文期刊>Biometrics: Journal of the Biometric Society : An International Society Devoted to the Mathematical and Statistical Aspects of Biology >Rapid Testing of SNPs and Gene-Environment Interactions in Case-Parent Trio Data Based on Exact Analytic Parameter Estimation
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Rapid Testing of SNPs and Gene-Environment Interactions in Case-Parent Trio Data Based on Exact Analytic Parameter Estimation

机译:基于精确解析参数估计的病例-亲本三重数据中SNP和基因-环境相互作用的快速测试

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摘要

Case-parent trio studies concerned with children affected by a disease and their parents aim to detect single nucleotide polymorphisms (SNPs) showing a preferential transmission of alleles from the parents to their affected offspring. A popular statistical test for detecting such SNPs associated with disease in this study design is the genotypic transmission/disequilibrium test (gTDT) based on a conditional logistic regression model, which usually needs to be fitted by an iterative procedure. In this article, we derive exact closed-form solutions for the parameter estimates of the conditional logistic regression models when testing for an additive, a dominant, or a recessive effect of a SNP, and show that such analytic parameter estimates also exist when considering gene-environment interactions with binary environmental variables. Because the genetic model underlying the association between a SNP and a disease is typically unknown, it might further be beneficial to use the maximum over the gTDT statistics for the possible effects of a SNP as test statistic. We therefore propose a procedure enabling a fast computation of the test statistic and the permutation-based p-value of this MAX gTDT. All these methods are applied to whole-genome scans of the case-parent trios from the International Cleft Consortium. These applications show our procedures dramatically reduce the required computing time compared to the conventional iterative methods allowing, for example, the analysis of hundreds of thousands of SNPs in a few minutes instead of several hours.
机译:与患病儿童及其父母有关的双亲个案研究旨在检测单核苷酸多态性(SNP),这些单核苷酸多态性显示等位基因优先从父母传给受影响的后代。在本研究设计中,用于检测与疾病相关的此类SNP的流行统计检验是基于条件逻辑回归模型的基因型传播/不平衡检验(gTDT),通常需要通过迭代程序进行拟合。在本文中,当测试SNP的累加,显性或隐性效应时,我们为条件逻辑回归模型的参数估计导出精确的封闭形式解,并表明在考虑基因时也存在此类分析参数估计环境与二进制环境变量的相互作用。由于SNP与疾病之间的关联所基于的遗传模型通常是未知的,因此使用gTDT统计中的最大值作为SNP的可能影响可能进一步有益。因此,我们提出了一种程序,可以快速计算出该MAX gTDT的测试统计量和基于排列的p值。所有这些方法都应用于国际Cleft财团对病例父母三重奏的全基因组扫描。这些应用程序表明,与传统的迭代方法相比,我们的过程大大减少了所需的计算时间,例如,可以在几分钟而不是几小时内分析成千上万个SNP。

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