首页> 外文期刊>European journal of human genetics: EJHG >A gene-based method for detecting gene-gene co-association in a case-control association study.
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A gene-based method for detecting gene-gene co-association in a case-control association study.

机译:一种基于基因的方法,用于在病例对照关联研究中检测基因与基因的关联。

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摘要

Association study (especially the genome-wide association study) now has a key function in identification and characterization of disease-predisposing genetic variant(s), which customarily involve multiple single nucleotide polymorphisms (SNPs) in a candidate region or across the genome. Case-control association design remains the most popular and a challenging issue in the statistical analysis is the optimal use of all information contained in these SNPs. Previous approaches often treated gene-gene interaction as deviation from additive genetic effects or replaced it with SNP-SNP interaction. However, these approaches are limited for their failure of consideration of gene-gene interaction or gene-gene co-association at gene level. Although the co-association of the SNPs within a candidate gene can be detected by principal component analysis-based logistic regression model, the detection of co-association between genes in genome remains uncertain. Here, we proposed a canonical correlation-based U statistic (CCU) for detecting gene-based gene-gene co-association in the case-control design. We explored its type I error rates and power through simulation and analyzed two real data sets. By treating gene as a functional unit in analysis, we found that CCU was a strong alternative to previous approaches. We discussed the performance of CCU as a gene-based gene-gene co-association statistic and the prospect of further improvement.
机译:关联研究(尤其是全基因组关联研究)现在在疾病易感基因变异的鉴定和表征中具有关键作用,这些遗传变异通常在候选区域或整个基因组中涉及多个单核苷酸多态性(SNP)。病例对照协会的设计仍然是最受欢迎的,而在统计分析中一个具有挑战性的问题是如何最佳利用这些SNP中包含的所有信息。先前的方法通常将基因-基因相互作用视为与加性遗传效应的偏离,或将其替换为SNP-SNP相互作用。但是,这些方法由于未能在基因水平上考虑基因-基因相互作用或基因-基因共同关联而受到限制。尽管可以通过基于主成分分析的逻辑回归模型检测候选基因中SNP的关联,但基因组中基因之间的关联检测仍不确定。在这里,我们提出了一种基于规范相关性的U统计量(CCU),用于在病例对照设计中检测基于基因的基因与基因之间的关联。我们通过仿真探索了其I型错误率和功耗,并分析了两个真实数据集。通过将基因作为分析中的功能单元,我们发现CCU是以前方法的有力替代方案。我们讨论了CCU作为基于基因的基因-基因共关联统计数据的性能以及进一步改进的前景。

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