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Simultaneous Detection of Lysine Metabolites by a Single LC-MS/MS Method: Monitoring Lysine Degradation in Mouse Plasma

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Journal Springerplus
Date 2016 Mar 31
PMID 27026869
Citations 10
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Abstract

Detection and quantification of lysine degradation metabolites in plasma is necessary for the diagnosis and follow-up of diseases such as pyridoxine-dependent epilepsy. The principal metabolites involved in the disease are related to the first steps of lysine oxidation, either through the saccharopine or the pipecolate pathways. Currently, there are three different analytical methods used to assess the content of these metabolites in urine and plasma, but they require different sample preparations and analytical equipment. Here, we describe a protocol that calls for a simple sample preparation and uses liquid chromatography tandem mass spectrometry (LC-MS/MS) that allows simultaneous detection and quantification of underivatized l-saccharopine, l-aminoadipic acid, l-pipecolic acid, piperideine-6-carboxylate, l-glutamic acid, and pyridoxal-5-phosphate in plasma samples. To validate the method we analyzed the time course degradation after intraperitoneal injection of l-lysine in C57BL/6/J mice. We observed that the degradation of lysine through the saccharopine pathway reached a maximum within the first 2 h. At this time point there was an increase in the levels of the metabolites saccharopine, aminoadipic acid, and pipecolic acid by 3-, 24- and 3.4-fold, respectively, compared to time zero levels. These metabolites returned to basal levels after 4-6 h. In conclusion, we have developed a LC-MS/MS approach, which allows simultaneous analysis of lysine degradation metabolites without the need for derivatization.

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References
1.
Chang Y . Lysine metabolism in the rat brain: the pipecolic acid-forming pathway. J Neurochem. 1978; 30(2):347-54. DOI: 10.1111/j.1471-4159.1978.tb06536.x. View

2.
Vella S, Beattie P, Cademartiri R, Laromaine A, Martinez A, Phillips S . Measuring markers of liver function using a micropatterned paper device designed for blood from a fingerstick. Anal Chem. 2012; 84(6):2883-91. PMC: 3320108. DOI: 10.1021/ac203434x. View

3.
Wishart D, Jewison T, Guo A, Wilson M, Knox C, Liu Y . HMDB 3.0--The Human Metabolome Database in 2013. Nucleic Acids Res. 2012; 41(Database issue):D801-7. PMC: 3531200. DOI: 10.1093/nar/gks1065. View

4.
Arruda P, Kemper E, Papes F, Leite A . Regulation of lysine catabolism in higher plants. Trends Plant Sci. 2000; 5(8):324-30. DOI: 10.1016/s1360-1385(00)01688-5. View

5.
Markovitz P, Chuang D, Cox R . Familial hyperlysinemias. Purification and characterization of the bifunctional aminoadipic semialdehyde synthase with lysine-ketoglutarate reductase and saccharopine dehydrogenase activities. J Biol Chem. 1984; 259(19):11643-6. View