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ProbMetab:一个用于基于 LC-MS 的代谢组学的贝叶斯概率注释的 R 包。

ProbMetab: an R package for Bayesian probabilistic annotation of LC-MS-based metabolomics.

机构信息

LabPIB, Department of Computing and Mathematics FFCLRP-USP, University of Sao Paulo, Ribeirao Preto, Brazil, INRA UMR1331, Toxalim, Research Centre in Food Toxicology, Universit de Toulouse, INSA, UPS, INP; LISBP, Toulouse, France, Institute for Systems Biology, Seattle, Washington, USA, CNRS, UMR5504, Toulouse, France, Department of Genetics ESALQ-USP, University of Sao Paulo, Piracicaba, Brazil and Laboratorio Nacional de Ciencia e Tecnologia do Bioetanol CTBE, Campinas, Brazil.

出版信息

Bioinformatics. 2014 May 1;30(9):1336-7. doi: 10.1093/bioinformatics/btu019. Epub 2014 Jan 17.

Abstract

We present ProbMetab, an R package that promotes substantial improvement in automatic probabilistic liquid chromatography-mass spectrometry-based metabolome annotation. The inference engine core is based on a Bayesian model implemented to (i) allow diverse source of experimental data and metadata to be systematically incorporated into the model with alternative ways to calculate the likelihood function and (ii) allow sensitive selection of biologically meaningful biochemical reaction databases as Dirichlet-categorical prior distribution. Additionally, to ensure result interpretation by system biologists, we display the annotation in a network where observed mass peaks are connected if their candidate metabolites are substrate/product of known biochemical reactions. This graph can be overlaid with other graph-based analysis, such as partial correlation networks, in a visualization scheme exported to Cytoscape, with web and stand-alone versions.

摘要

我们提出了 ProbMetab,这是一个 R 包,可以显著提高基于概率液相色谱-质谱的代谢组学自动注释的准确性。推理引擎的核心是基于贝叶斯模型实现的,该模型允许系统地将不同来源的实验数据和元数据纳入模型中,并提供了多种计算似然函数的方法,同时还允许选择有生物学意义的生化反应数据库作为 Dirichlet 分类先验分布。此外,为了确保系统生物学家能够对结果进行解释,我们将注释以网络图的形式展示,其中候选代谢物是已知生化反应的底物/产物的情况下,观测到的质荷比峰会相互连接。这个网络图可以与其他基于图形的分析方法(如部分相关网络)叠加,并以 Cytoscape 可视化方案导出,同时提供网络版和独立版。

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