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On Combining Triads and Unrelated Subjects Data in Candidate Gene Studies: An Application to Data on Testicular Cancer

机译:候选基因研究中三联征和无关受试者数据的组合:在睾丸癌数据中的应用

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摘要

Combining data collected from different sources is a cost-effective and time-efficient approach for enhancing the statistical efficiency in estimating weak-to-modest genetic effects or gene-gene or gene-environment interactions. However, combining data across studies becomes complicated when data are collected under different study designs, such as family-based and unrelated individual-based (e.g., population-based case-control design). In this paper, we describe a general method that permits the joint estimation of effects on disease risk of genes, environmental factors, and gene-gene/gene-environment interactions under a hybrid design that includes cases, parents of cases, and unrelated individuals. We provide both asymptotic theory and statistical inference. Extensive simulation experiments demonstrate that the proposed estimation and inferential methods perform well in realistic settings. We illustrate the method by an application to a study of testicular cancer.
机译:组合从不同来源收集的数据是一种经济高效且省时的方法,可提高估算弱到中等遗传效应或基因-基因或基因-环境相互作用的统计效率。但是,如果在不同的研究设计(例如基于家庭和不相关的个​​人)(例如,基于人群的病例对照设计)下收集数据,则跨研究合并数据将变得很复杂。在本文中,我们描述了一种通用方法,该方法允许在包括病例,病例父母和无关亲戚的混合设计下,联合评估对疾病,基因,环境因素和基因-基因/基因-环境相互作用的疾病风险的影响。我们提供渐近理论和统计推断。大量的仿真实验表明,所提出的估计和推论方法在实际环境中表现良好。我们通过在睾丸癌研究中的应用来说明该方法。

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