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Comprehensive speciation of low-molecular weight selenium metabolites in mustard seeds using HPLC-electrospray linear trap/Orbitrap tandem mass spectrometry.
Metallomics. 2013 Sep; 5(9):1294-304.M

Abstract

An analytical methodology based on high-resolution high mass accuracy electrospray ionization (ESI) tandem MS assisted by Se-specific detection using inductively coupled plasma mass spectrometry (ICP MS) was developed for speciation of selenium (Se) in seeds of black mustard (Brassica nigra) grown on Se-rich soil. Size-exclusion LC-ICP MS allowed the determination of the Se distribution according to the molecular mass and the control of the species stability during extraction. The optimization of hydrophilic interaction of LC and cation-exchange HPLC resulted in analytical conditions making it possible to detect and characterize over 30 Se species using ESI MS, including a number of minor (<0.5%) metabolites. Selenoglucosinolates were found to be the most important class of species accounting for at least 15% of the total Se present and over 50% of all the metabolites. They were found particularly unstable during aqueous extraction leading to the loss of Se by volatilization as methylselenonitriles and methylselenoisothiocyanates identified using gas chromatography (GC) with the parallel ICP MS and atmospheric pressure chemical ionization (APCI) MS/MS detection. However, selenoglucosinolates could be efficiently recovered by extraction with 70% methanol. Other classes of identified species included selenoamino acids, selenosugars, selenosinapine and selenourea derivatives. The three types of reactions leading to the formation of selenometabolites were: the Se-S substitution in the metabolic pathway, oxidative reactions of -SeH groups with endogenous biomolecules, and chemical reactions, e.g., esterification, of Se-containing molecules and other biomolecules through functional groups not involving Se.

Authors+Show Affiliations

Laboratoire de Chimie Analytique Bio-Inorganique et Environnement, CNRS UMR 5254, Université de Pau et des Pays de l'Adour, 64053 Pau, France. laurent.ouerdane@univ-pau.frNo affiliation info availableNo affiliation info availableNo affiliation info availableNo affiliation info availableNo affiliation info availableNo affiliation info available

Pub Type(s)

Journal Article
Research Support, Non-U.S. Gov't

Language

eng

PubMed ID

23925428

Citation

Ouerdane, Laurent, et al. "Comprehensive Speciation of Low-molecular Weight Selenium Metabolites in Mustard Seeds Using HPLC-electrospray Linear trap/Orbitrap Tandem Mass Spectrometry." Metallomics : Integrated Biometal Science, vol. 5, no. 9, 2013, pp. 1294-304.
Ouerdane L, Aureli F, Flis P, et al. Comprehensive speciation of low-molecular weight selenium metabolites in mustard seeds using HPLC-electrospray linear trap/Orbitrap tandem mass spectrometry. Metallomics. 2013;5(9):1294-304.
Ouerdane, L., Aureli, F., Flis, P., Bierla, K., Preud'homme, H., Cubadda, F., & Szpunar, J. (2013). Comprehensive speciation of low-molecular weight selenium metabolites in mustard seeds using HPLC-electrospray linear trap/Orbitrap tandem mass spectrometry. Metallomics : Integrated Biometal Science, 5(9), 1294-304. https://doi.org/10.1039/c3mt00113j
Ouerdane L, et al. Comprehensive Speciation of Low-molecular Weight Selenium Metabolites in Mustard Seeds Using HPLC-electrospray Linear trap/Orbitrap Tandem Mass Spectrometry. Metallomics. 2013;5(9):1294-304. PubMed PMID: 23925428.
* Article titles in AMA citation format should be in sentence-case
TY - JOUR T1 - Comprehensive speciation of low-molecular weight selenium metabolites in mustard seeds using HPLC-electrospray linear trap/Orbitrap tandem mass spectrometry. AU - Ouerdane,Laurent, AU - Aureli,Federica, AU - Flis,Paulina, AU - Bierla,Katarzyna, AU - Preud'homme,Hugues, AU - Cubadda,Francesco, AU - Szpunar,Joanna, PY - 2013/8/9/entrez PY - 2013/8/9/pubmed PY - 2014/3/26/medline SP - 1294 EP - 304 JF - Metallomics : integrated biometal science JO - Metallomics VL - 5 IS - 9 N2 - An analytical methodology based on high-resolution high mass accuracy electrospray ionization (ESI) tandem MS assisted by Se-specific detection using inductively coupled plasma mass spectrometry (ICP MS) was developed for speciation of selenium (Se) in seeds of black mustard (Brassica nigra) grown on Se-rich soil. Size-exclusion LC-ICP MS allowed the determination of the Se distribution according to the molecular mass and the control of the species stability during extraction. The optimization of hydrophilic interaction of LC and cation-exchange HPLC resulted in analytical conditions making it possible to detect and characterize over 30 Se species using ESI MS, including a number of minor (<0.5%) metabolites. Selenoglucosinolates were found to be the most important class of species accounting for at least 15% of the total Se present and over 50% of all the metabolites. They were found particularly unstable during aqueous extraction leading to the loss of Se by volatilization as methylselenonitriles and methylselenoisothiocyanates identified using gas chromatography (GC) with the parallel ICP MS and atmospheric pressure chemical ionization (APCI) MS/MS detection. However, selenoglucosinolates could be efficiently recovered by extraction with 70% methanol. Other classes of identified species included selenoamino acids, selenosugars, selenosinapine and selenourea derivatives. The three types of reactions leading to the formation of selenometabolites were: the Se-S substitution in the metabolic pathway, oxidative reactions of -SeH groups with endogenous biomolecules, and chemical reactions, e.g., esterification, of Se-containing molecules and other biomolecules through functional groups not involving Se. SN - 1756-591X UR - https://www.unboundmedicine.com/medline/citation/23925428/Comprehensive_speciation_of_low_molecular_weight_selenium_metabolites_in_mustard_seeds_using_HPLC_electrospray_linear_trap/Orbitrap_tandem_mass_spectrometry_ L2 - https://doi.org/10.1039/c3mt00113j DB - PRIME DP - Unbound Medicine ER -