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Exact variance component tests for longitudinal microbiome studies

机译:纵向微生物研究的确切方差分量试验

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Abstract In metagenomic studies, testing the association between microbiome composition and clinical outcomes translates to testing the nullity of variance components. Motivated by a lung?human immunodeficiency virus (HIV) microbiome project, we study longitudinal microbiome data by using variance component models with more than two variance components. Current testing strategies only apply to models with exactly two variance components and when sample sizes are large. Therefore, they are not applicable to longitudinal microbiome studies. In this paper, we propose exact tests (score test, likelihood ratio test, and restricted likelihood ratio test) to (a) test the association of the overall microbiome composition in a longitudinal design and?(b) detect the association of one specific microbiome cluster while adjusting for the effects from related clusters. Our approach combines the exact tests for null hypothesis with a single variance component with a strategy of reducing multiple variance components to a single one. Simulation studies demonstrate that our method has a correct type I error rate and superior power compared to existing methods at small sample sizes and weak signals. Finally, we apply our method to a longitudinal pulmonary microbiome study of?HIV‐infected patients and reveal two interesting genera Prevotella and Veillonella associated with forced vital capacity. Our findings shed light on the impact of the lung microbiome on HIV complexities. The method is implemented in the open‐source, high‐performance computing language Julia and is freely available at https://github.com/JingZhai63/VCmicrobiome .
机译:摘要在偏见研究中,测试微生物组成和临床结果之间的关联转化为测试方差组分的无效。受肺的动机?人类免疫缺陷病毒(HIV)微生物组项目,我们通过使用具有两个以上的方差分量的方差分量模型研究纵向微生物组数据。目前的测试策略仅适用于具有恰好两个方差组件的模型以及样本尺寸大。因此,它们不适用于纵向微生物组研究。在本文中,我们提出了精确的测试(得分测试,似然比测试和限制似然比测试)至(a)测试整体微生物组合物在纵向设计中的关联和α(b)检测一个特异性微生物组的关联群集调整相关群集的效果。我们的方法将NULL假设的精确测试与单个方差分量相结合,具有将多个方差分量减少到单个方差分量的策略。仿真研究表明,与小样本尺寸和弱信号的现有方法相比,我们的方法具有正确的I型错误率和卓越的功率。最后,我们将我们的方法应用于纵向肺部微生物组研究的血液感染患者,并揭示了与强迫生命能力相关的两种有趣的Fevotella和Veillonella。我们的研究结果揭示了肺部微生物组对HIV复杂性的影响。该方法在开源,高性能计算语言朱莉亚中实现,并在https://github.com/jingzhai63/vcmicrobiome上自由使用。

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