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Improving power in contrasting linkage-disequilibrium patterns between cases and controls

机译:通过对比案例和控件之间的链接不平衡模式来增强能力

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Genetic association studies offer an opportunity to find genetic variants underlying complex human diseases. The success of this approach depends on the linkage disequilibrium (LD) between markers and the disease variant(s) in a local region of the genome. Because, in the region with a disease mutation, the LD pattern among markers may differ between cases and controls, in some scenarios, it is useful to compare a measure of this LD, to map disease mutations. For example, using the composite correlation to characterize the LD among markers, Zaykin et al. recently suggested an "LD contrast" test and showed that it has high power under certain haplotype-driven disease models. Furthermore, it is likely that individual variants observed at different positions in a gene act jointly with each other to influence the phenotype, and the LD contrast test is also a useful method to detect such joint action. However, the LD among markers introduced by mutations and their joint action is usually confounded by background LD, which is measured at the population level, especially in a local region with disease mutations. Because the measures of LD that are usually used, such as the composite correlation, represent both effects, they may not be optimal for the purpose of detecting association when high background LD exists. Here, we describe a test that improves the LD contrast test by taking into account the background LD. Because the proposed test is developed in a regression framework, it is very flexible and can be extended to continuous traits and to incorporate covariates. Our simulation results demonstrate the validity and substantially higher power of the proposed method over current methods. Finally, we illustrate our new method by applying it to real data from the International Collaborative Study on Hypertension in Blacks.
机译:遗传关联研究为寻找复杂人类疾病的遗传变异提供了机会。这种方法的成功取决于标记物与基因组局部区域的疾病变异之间的连锁不平衡(LD)。因为在具有疾病突变的区域中,病例和对照之间标记之间的LD模式可能有所不同,因此在某些情况下,比较此LD的度量以绘制疾病突变很有用。例如,Zaykin等人使用复合相关性来表征标记之间的LD。最近建议进行“ LD对比”测试,并表明它在某些单倍型驱动的疾病模型下具有很高的功效。此外,很可能在基因的不同位置观察到的各个变异体会共同作用以影响表型,而LD对比测试也是检测这种共同作用的有用方法。然而,由突变及其联合作用引入的标记中的LD通常与背景LD混淆,背景LD是在人群水平上测量的,尤其是在具有疾病突变的局部区域。因为通常使用的LD量度(例如复合相关性)代表两种效果,所以当存在高背景LD时,它们可能不是检测关联的最佳方法。在这里,我们描述了一种通过考虑背景LD来改善LD对比度测试的测试。因为建议的测试是在回归框架中开发的,所以它非常灵活,可以扩展到连续性状并包含协变量。我们的仿真结果证明了该方法的有效性和比当前方法高得多的功率。最后,我们通过将其应用于国际黑人高血压合作研究的真实数据来说明我们的新方法。

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