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纵向微生物组数据分析中的统计挑战。

Statistical challenges in longitudinal microbiome data analysis.

机构信息

Melbourne Integrative Genomics, School of Mathematics and Statistics, The University of Melbourne, Royal Parade, 3052, Victoria, Australia.

Murdoch Children's Research Institute and Department of Paediatrics, University of Melbourne, Bouverie Street, 3052, Victoria, Australia.

出版信息

Brief Bioinform. 2022 Jul 18;23(4). doi: 10.1093/bib/bbac273.

Abstract

The microbiome is a complex and dynamic community of microorganisms that co-exist interdependently within an ecosystem, and interact with its host or environment. Longitudinal studies can capture temporal variation within the microbiome to gain mechanistic insights into microbial systems; however, current statistical methods are limited due to the complex and inherent features of the data. We have identified three analytical objectives in longitudinal microbial studies: (1) differential abundance over time and between sample groups, demographic factors or clinical variables of interest; (2) clustering of microorganisms evolving concomitantly across time and (3) network modelling to identify temporal relationships between microorganisms. This review explores the strengths and limitations of current methods to fulfill these objectives, compares different methods in simulation and case studies for objectives (1) and (2), and highlights opportunities for further methodological developments. R tutorials are provided to reproduce the analyses conducted in this review.

摘要

微生物组是一个复杂而动态的微生物群落,它们在生态系统中相互依存、共生,并与宿主或环境相互作用。纵向研究可以捕捉微生物组内的时间变化,从而深入了解微生物系统的机制;然而,由于数据的复杂和固有特征,目前的统计方法受到限制。我们已经确定了纵向微生物研究中的三个分析目标:(1)随时间和样本组、感兴趣的人口统计学因素或临床变量的差异丰度;(2)随时间共同进化的微生物聚类,以及(3)网络建模以识别微生物之间的时间关系。本综述探讨了当前方法在满足这些目标方面的优缺点,比较了不同方法在模拟和案例研究中的应用,以实现目标 (1) 和 (2),并强调了进一步发展方法的机会。本综述提供了 R 教程,以重现所进行的分析。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c8af/9294433/5533b89ec10d/bbac273f1.jpg

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