Identification of isomeric tropane alkaloids from Schizanthus grahamii by HPLC-NMR with loop storage and HPLC-UV-MS/SPE-NMR using a cryogenic flow probe
Author
dc.contributor.author
Bieri, Stefan
Author
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Varesio, Emmanuel
Author
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Veuthey, Jean Luc
Author
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Muñoz Muñoz, Orlando
Author
dc.contributor.author
Tseng, Li Hong
Author
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Braumann, Ulrich
Author
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Spraul, Manfred
Author
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Christen, Philippe
Admission date
dc.date.accessioned
2018-12-20T14:11:16Z
Available date
dc.date.available
2018-12-20T14:11:16Z
Publication date
dc.date.issued
2006
Cita de ítem
dc.identifier.citation
Phytochem. Anal. 17: 78–86 (2006)
Identifier
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09580344
Identifier
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10991565
Identifier
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10.1002/pca.889
Identifier
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https://repositorio.uchile.cl/handle/2250/154533
Abstract
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Two fully automated HPLC-NMR methods are reported and compared for the structure elucidation of four isomeric tropane
alkaloids from the stem-bark of an endemic Chilean plant, Schizanthus grahamii Gill. (Solanaceae). The first approach interfaced a
conventional HPLC column to NMR by means of a loop storage unit. After elution with a mobile phase consisting of deuterated
water and standard protonated organic solvents, the separated analytes were momentarily stored in a loop cassette and then
transferred one-at-a-time to the NMR flow probe for measurements. The second strategy combined HPLC with parallel ion-trap MS
detection and NMR spectroscopy using an integrated solid-phase extraction (SPE) unit for post-column analyte trapping. The
SPE cartridges were dried under a gentle stream of nitrogen and analytes were sequentially eluted and directed to a cryogenically
cooled flow-probe with an NMR-friendly solvent. The structures of the four isomeric alkaloids, 3α-senecioyloxy-7β-hydroxytropane,
3α-hydroxy-7β-angeloyloxytropane, 3α-hydroxy-7β-tigloyloxytropane and 3α-hydroxy-7β-senecioyloxytropane, were unambiguously determined by combining NMR assignments with MS data
Identification of isomeric tropane alkaloids from Schizanthus grahamii by HPLC-NMR with loop storage and HPLC-UV-MS/SPE-NMR using a cryogenic flow probe