Matrix Linear Models for Connecting Metabolite Composition to Individual Characteristics.

IF 3.7 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Metabolites Pub Date : 2025-02-19 DOI:10.3390/metabo15020140
Gregory Farage, Chenhao Zhao, Hyo Young Choi, Timothy J Garrett, Marshall B Elam, Katerina Kechris, Śaunak Sen
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Abstract

Background/Objectives: High-throughput metabolomics data provide a detailed molecular window into biological processes. We consider the problem of assessing how association of metabolite levels with individual (sample) characteristics, such as sex or treatment, depend on metabolite characteristics such as pathways. Typically, this is done using a two-step process. In the first step, we assess the association of each metabolite with individual characteristics. In the second step, an enrichment analysis is performed by metabolite characteristics. Methods: We combine the two steps using a bilinear model based on the matrix linear model (MLM) framework previously developed for high-throughput genetic screens. Our method can estimate relationships in metabolites sharing known characteristics, whether categorical (such as type of lipid or pathway) or numerical (such as number of double bonds in triglycerides). Results: We demonstrate the flexibility and interoperability of MLMs by applying them to three metabolomic studies. We show that our approach can separate the contribution of the overlapping triglyceride characteristics, such as the number of double bonds and the number of carbon atoms. Conclusion: The matrix linear model offers a flexible, efficient, and interpretable framework for integrating external information and examining complex relationships in metabolomics data. Our method has been implemented in the open-source Julia package, MatrixLM. Data analysis scripts with example data analyses are also available.

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将代谢物组成与个体特征联系起来的矩阵线性模型。
背景/目的:高通量代谢组学数据为生物过程提供了详细的分子窗口。我们考虑的问题是评估代谢物水平与个体(样本)特征(如性别或治疗)的关联如何取决于代谢物特征(如途径)。通常,这是通过两个步骤完成的。在第一步,我们评估每个代谢物与个体特征的关联。第二步,通过代谢物特征进行富集分析。方法:我们使用基于矩阵线性模型(MLM)框架的双线性模型将这两个步骤结合起来,该模型先前用于高通量遗传筛选。我们的方法可以估计共享已知特征的代谢物之间的关系,无论是分类(如脂质类型或途径)还是数值(如甘油三酯中的双键数量)。结果:我们通过将传销应用于三个代谢组学研究,证明了传销的灵活性和互操作性。我们表明,我们的方法可以分离重叠甘油三酯特征的贡献,如双键的数量和碳原子的数量。结论:矩阵线性模型为整合外部信息和检查代谢组学数据中的复杂关系提供了一个灵活、高效和可解释的框架。我们的方法已经在开源Julia包MatrixLM中实现了。还可以使用带有示例数据分析的数据分析脚本。
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来源期刊
Metabolites
Metabolites Biochemistry, Genetics and Molecular Biology-Molecular Biology
CiteScore
5.70
自引率
7.30%
发文量
1070
审稿时长
17.17 days
期刊介绍: Metabolites (ISSN 2218-1989) is an international, peer-reviewed open access journal of metabolism and metabolomics. Metabolites publishes original research articles and review articles in all molecular aspects of metabolism relevant to the fields of metabolomics, metabolic biochemistry, computational and systems biology, biotechnology and medicine, with a particular focus on the biological roles of metabolites and small molecule biomarkers. Metabolites encourages scientists to publish their experimental and theoretical results in as much detail as possible. Therefore, there is no restriction on article length. Sufficient experimental details must be provided to enable the results to be accurately reproduced. Electronic material representing additional figures, materials and methods explanation, or supporting results and evidence can be submitted with the main manuscript as supplementary material.
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