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Increasing Association Mapping Power and Resolution in Mouse Genetic Studies Through the Use of Meta-Analysis for Structured Populations

机译:通过使用Meta分析的结构化群体在小鼠遗传学研究中提高关联映射能力和分辨率。

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摘要

Genetic studies in mouse models have played an integral role in the discovery of the mechanisms underlying many human diseases. The primary mode of discovery has been the application of linkage analysis to mouse crosses. This approach results in high power to identify regions that affect traits, but in low resolution, making it difficult to identify the precise genomic location harboring the causal variant. Recently, a panel of mice referred to as the hybrid mouse diversity panel (HMDP) has been developed to overcome this problem. However, power in this panel is limited by the availability of inbred strains. Previous studies have suggested combining results across multiple panels as a means to increase power, but the methods employed may not be well suited to structured populations, such as the HMDP. In this article, we introduce a meta-analysis-based method that may be used to combine HMDP studies with F2 cross studies to gain power, while increasing resolution. Due to the drastically different genetic structure of F2s and the HMDP, the best way to combine two studies for a given SNP depends on the strain distribution pattern in each study. We show that combining results, while accounting for these patterns, leads to increased power and resolution. Using our method to map bone mineral density, we find that two previously implicated loci are replicated with increased significance and that the size of the associated is decreased. We also map HDL cholesterol and show a dramatic increase in the significance of a previously identified result.
机译:小鼠模型中的遗传研究在发现许多人类疾病的潜在机制中扮演了不可或缺的角色。发现的主要方式是将连锁分析应用于小鼠杂交。该方法导致识别影响性状的区域的能力较高,但分辨率较低,这使得难以确定包含因果变体的精确基因组位置。近来,已经开发了称为杂种小鼠多样性小组(HMDP)的小鼠小组来克服该问题。但是,此面板的功能受到近交菌株可用性的限制。先前的研究表明,将跨多个面板的结果组合起来可以提高功率,但是所采用的方法可能不适用于HMDP等结构化群体。在本文中,我们介绍了一种基于荟萃分析的方法,该方法可用于将HMDP研究与F2交叉研究相结合来获得功效,同时提高分辨率。由于F2和HMDP的遗传结构截然不同,因此针对给定SNP结合两项研究的最佳方法取决于每项研究中的菌株分布模式。我们表明,结合结果,同时考虑到这些模式,会导致功率和分辨率提高。使用我们的方法绘制骨矿物质密度图,我们发现复制了两个以前涉及的基因座,并增加了显着性,并且减小了相关基因的大小。我们还绘制了HDL胆固醇的图,并显示出先前确定的结果的重要性显着增加。

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