Psyche - a valuable experiment in plant nmr-metabolomics

Abstract: 1H-NMR is a very reproducible spectroscopic method and, therefore, a powerful tool for metabolomic analysis of biological samples. However, due to the high complexity of natural samples, such as plant extracts, the evaluation of spectra is difficult because of signal overlap. The new NMR "Pure Shift" methods improve spectral resolution by suppressing homonuclear coupling and turning multiplets into singlets. The PSYCHE (Pure Shift Yielded by Chirp excitation) and the Zangger-Sterk pulse sequence were tested. The parameters of the more suitable PSYCHE experiment were optimized, and the extracts of 21 Hypericum species were measured. Different evaluation criteria were used to compare the suitability of the PSYCHE experiment with conventional 1H-NMR. The relationship between the integral of a signal and the related bin value established by linear regression demonstrates an equal representation of the integrals in binned PSYCHE spectra compared to conventional 1H-NMR. Using multivariate data analysis based on both techniques reveals comparable results. The obtained data demonstrate that Pure Shift spectra can support the evaluation of conventional 1H-NMR experiments.

Cite this as

Stark, Pauline, Porzel, Andrea, Zab, Caroline, Wessjohann, Ludger, Franke, Katrin, Rizzo, Paride (2020). Dataset: Psyche - a valuable experiment in plant nmr-metabolomics. https://doi.org/10.22000/338

DOI retrieved: 2020

Additional Info

Field Value
Imported on January 12, 2023
Last update November 28, 2024
License CC BY-SA 4.0 Attribution-ShareAlike
Source https://doi.org/10.22000/338
Author Stark, Pauline
Given Name Pauline
Family Name Stark
More Authors
Porzel, Andrea
Zab, Caroline
Wessjohann, Ludger
Franke, Katrin
Rizzo, Paride
Source Creation 2020
Publishers
Leibniz-Institut für Pflanzenbiochemie
Production Year 2019
Publication Year 2020
Resource Type Dataset - NMR raw data
Subject Areas
Name: Chemistry

Name: Biochemistry

Related Identifiers
Identifier: doi:10.3390/molecules25215125
Type: DOI
Relation: IsSupplementTo