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Properties of global‐ and local‐ancestry adjustments in genetic association tests in admixed populations

机译:混合群体遗传结社试验中的全球和本地祖先调整的性质

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摘要

Abstract Population substructure can lead to confounding in tests for genetic association, and failure to adjust properly can result in spurious findings. Here we address this issue of confounding by considering the impact of global ancestry (average ancestry across the genome) and local ancestry (ancestry at a specific chromosomal location) on regression parameters and relative power in ancestry‐adjusted and ‐unadjusted models. We examine theoretical expectations under different scenarios for population substructure; applying different regression models, verifying and generalizing using simulations, and exploring the findings in real‐world admixed populations. We show that admixture does not lead to confounding when the trait locus is tested directly in a single admixed population. However, if there is more complex population structure or a marker locus in linkage disequilibrium (LD) with the trait locus is tested, both global and local ancestry can be confounders. Additionally, we show the genotype parameters of adjusted and unadjusted models all provide tests for LD between the marker and trait locus, but in different contexts. The local ancestry adjusted model tests for LD in the ancestral populations, while tests using the unadjusted and the global ancestry adjusted models depend on LD in the admixed population(s), which may be enriched due to different ancestral allele frequencies. Practically, this implies that global‐ancestry adjustment should be used for screening, but local‐ancestry adjustment may better inform fine mapping and provide better effect estimates at trait loci.
机译:摘要人口子结构可能导致遗传关联的测试中的混淆,并且未能正确调整可能导致杂散的发现。在这里,我们通过考虑全球血统(基因组的平均血统)和当地祖先(特定染色体位置的祖先)对回归参数和祖先调整的模型中的相对电力的影响来解决这个问题。我们研究了不同方案的理论期望,适合人口子结构;应用不同的回归模型,使用模拟验证和推广,并探索现实世界综合组合中的研究结果。当特质基因座直接在单一混合人口中测试时,我们表明外加剂不会导致混淆。然而,如果测试了具有特征基因座的群体结构或链接不平衡(LD)中的标记物位点,则全球和本地祖先都可以是混杂的。此外,我们显示调整和未调整模型的基因型参数,所有这些都为标记和特质基因座之间的LD提供测试,但在不同的背景下。本地祖先调整了祖先人群中LD的模型测试,而使用未经调整的和全球祖先调整模型的测试依赖于混合群体中的LD,这可能是由于不同的祖先等位基因频率而富集。实际上,这意味着应该用于筛选全球祖先调整,但本地祖先调整可能更好地通知精细映射,并在特质基因座提供更好的效果估计。

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