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在微生物组研究中整合系统发育和功能数据。

Integrating phylogenetic and functional data in microbiome studies.

机构信息

Department of Microbiology and Immunology, McGill University, Montréal, QC H3A 2B4, Canada.

Department of Mathematics and Statistics, Dalhousie University, Halifax, NS B3H 4R2, Canada.

出版信息

Bioinformatics. 2022 Nov 15;38(22):5055-5063. doi: 10.1093/bioinformatics/btac655.

Abstract

MOTIVATION

Microbiome functional data are frequently analyzed to identify associations between microbial functions (e.g. genes) and sample groups of interest. However, it is challenging to distinguish between different possible explanations for variation in community-wide functional profiles by considering functions alone. To help address this problem, we have developed POMS, a package that implements multiple phylogeny-aware frameworks to more robustly identify enriched functions.

RESULTS

The key contribution is an extended balance-tree workflow that incorporates functional and taxonomic information to identify functions that are consistently enriched in sample groups across independent taxonomic lineages. Our package also includes a workflow for running phylogenetic regression. Based on simulated data we demonstrate that these approaches more accurately identify gene families that confer a selective advantage compared with commonly used tools. We also show that POMS in particular can identify enriched functions in real-world metagenomics datasets that are potential targets of strong selection on multiple members of the microbiome.

AVAILABILITY AND IMPLEMENTATION

These workflows are freely available in the POMS R package at https://github.com/gavinmdouglas/POMS.

SUPPLEMENTARY INFORMATION

Supplementary data are available at Bioinformatics online.

摘要

动机

微生物组功能数据经常被分析,以识别微生物功能(例如基因)与感兴趣的样本组之间的关联。然而,仅考虑功能,很难区分社区功能谱变异的不同可能解释。为了解决这个问题,我们开发了 POMS,它实现了多个系统发育感知框架,以更稳健地识别富集的功能。

结果

主要贡献是扩展的平衡树工作流程,该流程结合了功能和分类学信息,以识别在独立分类群中跨越样本组一致富集的功能。我们的软件包还包括运行系统发育回归的工作流程。基于模拟数据,我们证明这些方法比常用工具更准确地识别赋予选择优势的基因家族。我们还表明,POMS 特别可以识别实际宏基因组数据集富集的功能,这些功能可能是微生物组多个成员强烈选择的潜在目标。

可用性和实现

这些工作流程可在 https://github.com/gavinmdouglas/POMS 上的 POMS R 软件包中免费获得。

补充信息

补充资料可在生物信息学在线获得。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0241/9665866/d0a27d99d31a/btac655f1.jpg

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