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A systematic search for SNPs/haplotypes associated with disease phenotypes using a haplotype-based stepwise procedure

机译:使用基于单倍型的逐步过程系统搜索与疾病表型相关的SNP /单倍型

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摘要

Background Genotyping technologies enable us to genotype multiple Single Nucleotide Polymorphisms (SNPs) within selected genes/regions, providing data for haplotype association analysis. While haplotype-based association analysis is powerful for detecting untyped causal alleles in linkage-disequilibrium (LD) with neighboring SNPs/haplotypes, the inclusion of extraneous SNPs could reduce its power by increasing the number of haplotypes with each additional SNP. Methods Here, we propose a haplotype-based stepwise procedure (HBSP) to eliminate extraneous SNPs. To evaluate its properties, we applied HBSP to both simulated and real data, generated from a study of genetic associations of the bactericidal/permeability-increasing (BPI) gene with pulmonary function in a cohort of patients following bone marrow transplantation. Results Under the null hypothesis, use of the HBSP gave results that retained the desired false positive error rates when multiple comparisons were considered. Under various alternative hypotheses, HBSP had adequate power to detect modest genetic associations in case-control studies with 500, 1,000 or 2,000 subjects. In the current application, HBSP led to the identification of two specific SNPs with a positive validation. Conclusion These results demonstrate that HBSP retains the essence of haplotype-based association analysis while improving analytic power by excluding extraneous SNPs. Minimizing the number of SNPs also enables simpler interpretation and more cost-effective applications.
机译:背景基因分型技术使我们能够对选定基因/区域内的多个单核苷酸多态性(SNP)进行基因分型,从而为单倍型关联分析提供数据。尽管基于单倍型的关联分析功能强大,可以检测连锁不平衡(LD)与相邻SNP /单倍型中未分型的因果等位基因,但通过增加每增加一个SNP的单倍型数量,包含无关的SNP可能会降低其功效。方法在这里,我们提出了一种基于单体型的逐步程序(HBSP),以消除无关的SNP。为了评估其特性,我们将HBSP应用于模拟和真实数据,这些数据来自于骨髓移植患者队列中杀菌/通透性提高(BPI)基因与肺功能的遗传关联研究。结果在零假设的情况下,当考虑多次比较时,使用HBSP得出的结果保留了所需的假阳性错误率。在各种替代假设下,HBSP在针对500、1,000或2,000名受试者的病例对照研究中具有足够的能力检测适度的遗传关联。在当前应用中,HBSP导致鉴定出两个具有肯定验证的SNP。结论这些结果表明HBSP保留了基于单倍型关联分析的本质,同时通过排除无关的SNP来提高分析能力。最小化SNP的数量还可以简化解释,提高应用程序的成本效益。

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