Differentiation of Roots of Glycyrrhiza Species by 1H Nuclear Magnetic Resonance Spectroscopy and Multivariate Statistical Analysis

To classify Glycyrrhiza species, samples of different species were analyzed by 1H NMR-based metabolomics technique. Partial least squares discriminant analysis (PLS-DA) was used as the multivariate statistical analysis of the 1H NMR data sets. There was a clear separation between various Glycyrrhiza...

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Veröffentlicht in:Bulletin of the Korean Chemical Society 2010, 31(4), , pp.825-828
Hauptverfasser: 양승옥, Sun-Hee Hyun, So-Hyun Kim, Hee-su Kim, 이재휘, Wan Kyun Whang, 이민원, Hyung-Kyoon Choi
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Sprache:eng
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Zusammenfassung:To classify Glycyrrhiza species, samples of different species were analyzed by 1H NMR-based metabolomics technique. Partial least squares discriminant analysis (PLS-DA) was used as the multivariate statistical analysis of the 1H NMR data sets. There was a clear separation between various Glycyrrhiza species in the PLS-DA derived score plots. The PLS-DA model was validated, and the key metabolites contributing to the separation in the score plots of various Glycyrrhiza species were lactic acid, alanine, arginine, proline, malic acid, asparagine, choline, glycine, glucose, sucrose, 4-hydroxyphenylacetic acid, and formic acid. The compounds present at relatively high levels were glucose, and 4-hydroxyphenylacetic acid in G. glabra; lactic acid, alanine, and proline in G. inflata; and arginine, malic acid, and sucrose in G. uralensis. This is the first study to perform the global metabolomic profiling and differentiation of Glycyrrhiza species using 1H NMR and multivariate statistical analysis. KCI Citation Count: 13
ISSN:0253-2964
1229-5949