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      Metabolic Pathway Analysis: Advantages and Pitfalls for the Functional Interpretation of Metabolomics and Lipidomics Data.

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          Abstract

          Over the past decades, pathway analysis has become one of the most commonly used approaches for the functional interpretation of metabolomics data. Although the approach is widely used, it is not well standardized and the impact of different methodologies on the functional outcome is not well understood. Using four publicly available datasets, we investigated two main aspects of topological pathway analysis, namely the consideration of non-human native enzymatic reactions (e.g., from microbiota) and the interconnectivity of individual pathways. The exclusion of non-human native reactions led to detached and poorly represented reaction networks and to loss of information. The consideration of connectivity between pathways led to better emphasis of certain central metabolites in the network; however, it occasionally overemphasized the hub compounds. We proposed and examined a penalization scheme to diminish the effect of such compounds in the pathway evaluation. In order to compare and assess the results between different methodologies, we also performed over-representation analysis of the same datasets. We believe that our findings will raise awareness on both the capabilities and shortcomings of the currently used pathway analysis practices in metabolomics. Additionally, it will provide insights on various methodologies and strategies that should be considered for the analysis and interpretation of metabolomics data.

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          Author and article information

          Journal
          Biomolecules
          Biomolecules
          MDPI AG
          2218-273X
          2218-273X
          Jan 27 2023
          : 13
          : 2
          Affiliations
          [1 ] Institute of Clinical Chemistry, Inselspital, Bern University Hospital, 3010 Bern, Switzerland.
          Article
          biom13020244
          10.3390/biom13020244
          9953275
          36830612
          1a6a2f45-5636-4729-ba7f-b23ab9e1c7b0
          History

          pathway analysis,metabolism,metabolomics,network topology,over-representation analysis

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