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A multiway approach to data integration in systems biology based on Tucker3 and N-PLS

机译:基于Tucker3和N-PLS的系统生物学数据集成多途径方法

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摘要

This paper discusses the potential of multi-way projection methods for analysing multifactorial data structures to identify underlying components of variability that interconnect different blocks of omics variables. We explore their suitability for explorative and variable selection analysis of systems biology data where different types of biological parameters are studied together. These methodologies were applied to the integrative analysis of a functional genomics dataset where transcriptomics, metabolomics and physiological data are available. Our results show that multiway methods are suited to accommodate multifactorial omics experiments and to analyse relationships between different biochemical layers. Additionally, strategies are presented for variable selection in the context of omics data and for interpreting results at the level of cellular pathways.
机译:本文讨论了用于分析多因素数据结构以识别将不同组学变量组互连的可变性的潜在成分的多向投影方法的潜力。我们探讨了它们对系统生物学数据进行探索性和变量选择分析的适用性,在这些研究中,不同类型的生物学参数被一起研究。这些方法学被用于功能基因组学数据集的综合分析,其中转录组学,代谢组学和生理学数据是可用的。我们的结果表明,多路方法适合容纳多因素组学实验并分析不同生化层之间的关系。另外,提出了在组学数据的背景下进行变量选择并在细胞途径水平上解释结果的策略。

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