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A Likelihood Ratio-Based Mann-Whitney Approach Finds Novel Replicable Joint Gene Action for Type 2 Diabetes

机译:基于似然比的Mann-Whitney方法发现2型糖尿病的新型可复制联合基因作用

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The potential importance of the joint action of genes, whether modeled with or without a statistical interaction term, has long been recognized. However, identifying such action has been a great challenge, especially when millions of genetic markers are involved. We propose a likelihood ratio-based Mann-Whitney test to search for joint gene action either among candidate genes or genome-wide. It extends the traditional univariate Mann-Whitney test to assess the joint association of genotypes at multiple loci with disease, allowing for high-order statistical interactions. Because only one overall significance test is conducted for the entire analysis, it avoids the issue of multiple testing. Moreover, the approach adopts a computationally efficient algorithm, making a genome-wide search feasible in a reasonable amount of time on a high performance personal computer. We evaluated the approach using both theoretical and real data. By applying the approach to 40 type 2 diabetes (T2D) susceptibility single-nucleotide polymorphisms (SNPs), we identified a four-locus model strongly associated with T2D in the Wellcome Trust (WT) study (permutation P-value 0.001), and replicated the same finding in the Nurses' Health Study/Health Professionals Follow-Up Study (NHS/HPFS) (P-value = 3.03×10-11). We also conducted a genome-wide search on 385,598 SNPs in the WT study. The analysis took approximately 55 hr on a personal computer, identifying the same first two loci, but overall a different set of four SNPs, jointly associated with T2D (P-value = 1.29×10 -5). The nominal significance of this same association reached 4.01×10 -6 in the NHS/HPFS.
机译:长期以来,人们已经认识到了基因联合作用的潜在重要性,无论是否使用统计相互作用项进行建模。然而,识别这种作用是一个巨大的挑战,特别是当涉及数百万个遗传标记时。我们提出了一种基于似然比的Mann-Whitney检验,以寻找候选基因或全基因组之间的联合基因作用。它扩展了传统的单变量Mann-Whitney检验,以评估多个位点的基因型与疾病的联合关联,从而实现高阶统计相互作用。由于仅对整个分析执行一次总体重要性测试,因此避免了多次测试的问题。而且,该方法采用了计算有效的算法,使得在高性能个人计算机上在合理的时间内进行全基因组搜索成为可能。我们使用理论和实际数据评估了该方法。通过将该方法应用于40种2型糖尿病(T2D)易感性单核苷酸多态性(SNP),我们在惠康信托(WT)研究中确定了与T2D密切相关的四基因座模型(排列P值<0.001),并且在护士健康研究/健康专业人员随访研究(NHS / HPFS)中重复了相同的发现(P值= 3.03×10-11)。我们还在WT研究中对385,598个SNP进行了全基因组搜索。该分析在个人计算机上花费了大约55个小时,识别出相同的前两个基因座,但总体而言是一组不同的四个SNP,与T2D关联(P值= 1.29×10 -5)。在NHS / HPFS中,相同关联的名义重要性达到4.01×10 -6。

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