Quantification of methionine and selenomethionine in biological samples using multiple reaction monitoring high performance liquid chromatography tandem mass spectrometry (MRM-HPLC-MS/MS)
Language English Country Netherlands Media print-electronic
Document type Journal Article
PubMed
29558738
DOI
10.1016/j.jchromb.2018.03.012
PII: S1570-0232(17)32169-4
Knihovny.cz E-resources
- Keywords
- Diethyl ethoxymethylenemalonate, Liquid chromatography mass spectrometry, Methanesulfonic acid, Methionine, Protease XIV, Selenomethionine,
- MeSH
- Chlorella vulgaris metabolism MeSH
- Limit of Detection MeSH
- Linear Models MeSH
- Malonates MeSH
- Mesylates MeSH
- Methionine analysis metabolism MeSH
- Pronase MeSH
- Reproducibility of Results MeSH
- Selenomethionine analysis metabolism MeSH
- Tandem Mass Spectrometry methods MeSH
- Chromatography, High Pressure Liquid methods MeSH
- Publication type
- Journal Article MeSH
- Names of Substances
- diethyl (ethoxymethylene)malonate MeSH Browser
- Malonates MeSH
- methanesulfonic acid MeSH Browser
- Mesylates MeSH
- Methionine MeSH
- Pronase MeSH
- Selenomethionine MeSH
Quantification of selenated amino-acids currently relies on methods employing inductively coupled plasma mass spectrometry (ICP-MS). Although very accurate, these methods do not allow the simultaneous determination of standard amino-acids, hampering the comparison of the content of selenated versus non-selenated species such as methionine (Met) and selenomethionine (SeMet). This paper reports two approaches for the simultaneous quantification of Met and SeMet. In the first approach, standard enzymatic hydrolysis employing Protease XIV was applied for the preparation of samples. The second approach utilized methanesulfonic acid (MA) for the hydrolysis of samples, either in a reflux system or in a microwave oven, followed by derivatization with diethyl ethoxymethylenemalonate. The prepared samples were then analyzed by multiple reaction monitoring high performance liquid chromatography tandem mass spectrometry (MRM-HPLC-MS/MS). Both approaches provided platforms for the accurate determination of selenium/sulfur substitution rate in Met. Moreover the second approach also provided accurate simultaneous quantification of Met and SeMet with a low limit of detection, low limit of quantification and wide linearity range, comparable to the commonly used gas chromatography mass spectrometry (GC-MS) method or ICP-MS. The novel method was validated using certified reference material in conjunction with the GC-MS reference method.
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