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Visualization of GC/TOF-MS-Based Metabolomics Data for Identification of Biochemically Interesting Compounds Using OPLS Class Models

Analytical Chemistry · 2007 · Vol. 80(1) · pp. 115–122
Susanne WiklundErik JohanssonLina SjöströmEwa J. MellerowiczUlf EdlundJohn P. ShockcorJohan GottfriesThomas MöritzJohan Trygg

Abstract

Metabolomics studies generate increasingly complex data tables, which are hard to summarize and visualize without appropriate tools. The use of chemometrics tools, e.g., principal component analysis (PCA), partial least-squares to latent structures (PLS), and orthogonal PLS (OPLS), is therefore of great importance as these include efficient, validated, and robust methods for modeling information-rich chemical and biological data. Here the S-plot is proposed as a tool for visualization and interpretation of multivariate classification models, e.g., OPLS discriminate analysis, having two or more classes. The S-plot visualizes both the covariance and correlation between the metabolites and the modeled class designation. Thereby the S-plot helps identifying statistically significant and potentially biochemically significant metabolites, based both on contributions to the model and their reliability. An extension of the S-plot, the SUS-plot (shared and unique structure), is applied to compare the outcome of multiple classification models compared to a common reference, e.g., control. The used example is a gas chromatography coupled mass spectroscopy based metabolomics study in plant biology where two different transgenic poplar lines are compared to wild type. By using OPLS, an improved visualization and discrimination of interesting metabolites could be demonstrated.

Metabolomics and Mass Spectrometry StudiesSpectroscopy and Chemometric AnalysesGABA and Rice ResearchOPLSMetabolomicsVisualizationChemometricsPrincipal component analysisPlot (graphics)ChemistryPartial least squares regressionMultivariate statisticsProcrustes analysis

MeSH terms

Gas Chromatography-Mass SpectrometryReproducibility of ResultsLeast-Squares AnalysisPlants, Genetically ModifiedPopulus

Funding

  • Stiftelsen för Strategisk Forskning
  • Vetenskapsrådet
Citations
1,212
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16.62
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26
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Cited by
Multivariate data analysis in pharmaceutics: A tutorial review
International Journal of Pharmaceutics · 2011 · 762 citations
References
The earth is round (p < .05).
American Psychologist · 1994 · 3,905 citations
The Probable Error of a Mean
Biometrika · 1908 · 3,819 citations
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