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A Multivariate Distance-based Analytic Framework for Microbial Interdependence Association Test in Longitudinal Study

机译:纵向研究中基于多元距离的微生物相互依存关系分析框架

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摘要

Human microbiome is the collection of microbes living in and on the various parts of our body. The microbes living on our body in nature do not live alone. They act as integrated microbial community with massive competing and cooperating and contribute to our human health in a very important way. Most current analyses focus on examining microbial differences at a single time point, which do not adequately capture the dynamic nature of the microbiome data. With the advent of high-throughput sequencing and analytical tools, we are able to probe the interdependent relationship among microbial species through longitudinal study. Here we propose a multivariate distance-based test to evaluate the association between key phenotypic variables and microbial interdependence utilizing the repeatedly measured microbiome data. Extensive simulations were performed to evaluate the validity and efficiency of the proposed method. We also demonstrate the utility of the proposed test using a well-designed longitudinal murine experiment and a longitudinal human study. The proposed methodology has been implemented in the freely distributed open-source R package and Python code.
机译:人体微生物组是生活在我们身体各个部分之中和之上的微生物的集合。生活在自然界中的微生物并不单单生活。它们作为具有大量竞争与合作关系的综合微生物群落,以非常重要的方式为我们的人类健康做出了贡献。当前大多数分析都集中在检查单个时间点的微生物差异上,这些差异无法充分捕捉微生物组数据的动态特性。随着高通量测序和分析工具的出现,我们能够通过纵向研究探索微生物物种之间的相互依赖关系。在这里,我们提出了一种基于距离的多元测试,以利用重复测量的微生物组数据来评估关键表型变量与微生物相互依赖性之间的关联。进行了广泛的仿真,以评估该方法的有效性和效率。我们还演示了使用精心设计的纵向鼠类实验和纵向人体研究提出的测试的实用性。所提议的方法已在免费分发的开源R包和Python代码中实现。

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