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Multifactorial Analysis of Environmental Metabolomic Data in Ecotoxicology: Wild Marine Mussel Exposed to WWTP Effluent As a Case Study

Overview
Journal Metabolites
Publisher MDPI
Date 2020 Jul 3
PMID 32610679
Citations 8
Authors
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Abstract

Environmental metabolomics is a powerful approach to investigate the response of organisms to contaminant exposure at a molecular scale. However, metabolomic responses to realistic environmental conditions can be hindered by factors intrinsic to the environment and the organism. Hence, a well-designed experimental exposure associated with adequate statistical analysis could be helpful to better characterize and relate the observed variability to its different origins. In the current study, we applied a multifactorial experiment combined to Analysis of variance Multiblock Orthogonal Partial Least Squares (AMOPLS), to assess the metabolic response of wild marine mussels, , exposed to a wastewater treatment plant effluent, considering gender as an experimental factor. First, the total observed variability was decomposed to highlight the contribution of each effect related to the experimental factors. Both the exposure and the interaction gender × exposure had a statistically significant impact on the observed metabolic alteration. Then, these metabolic patterns were further characterized by analyzing the individual variable contributions to each effect. A main change in glycerophospholipid levels was highlighted in both males and females as a common response, possibly caused by oxidative stress, which could lead to reproductive disorders, whereas metabolic alterations in some polar lipids and kynurenine pathway were rather gender-specific. This may indicate a disturbance in the energy metabolism and immune system only in males. Finally, AMOPLS is a useful tool facilitating the interpretation of complex metabolomic data and is expected to have a broad application in the field of ecotoxicology.

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References
1.
Arpin-Pont L, Martinez Bueno M, Gomez E, Fenet H . Occurrence of PPCPs in the marine environment: a review. Environ Sci Pollut Res Int. 2014; 23(6):4978-91. DOI: 10.1007/s11356-014-3617-x. View

2.
Smith C, Want E, OMaille G, Abagyan R, Siuzdak G . XCMS: processing mass spectrometry data for metabolite profiling using nonlinear peak alignment, matching, and identification. Anal Chem. 2006; 78(3):779-87. DOI: 10.1021/ac051437y. View

3.
Ji C, Li F, Wang Q, Zhao J, Sun Z, Wu H . An integrated proteomic and metabolomic study on the gender-specific responses of mussels Mytilus galloprovincialis to tetrabromobisphenol A (TBBPA). Chemosphere. 2015; 144:527-39. DOI: 10.1016/j.chemosphere.2015.08.052. View

4.
Gonzalez-Ruiz V, Pezzatti J, Roux A, Stoppini L, Boccard J, Rudaz S . Unravelling the effects of multiple experimental factors in metabolomics, analysis of human neural cells with hydrophilic interaction liquid chromatography hyphenated to high resolution mass spectrometry. J Chromatogr A. 2017; 1527:53-60. DOI: 10.1016/j.chroma.2017.10.055. View

5.
Dumas T, Bonnefille B, Gomez E, Boccard J, Castro N, Fenet H . Metabolomics approach reveals disruption of metabolic pathways in the marine bivalve Mytilus galloprovincialis exposed to a WWTP effluent extract. Sci Total Environ. 2020; 712:136551. DOI: 10.1016/j.scitotenv.2020.136551. View