ARTYKUŁ PRZEGLĄDOWY
Zastosowanie profilowania aminokwasów metodą GLC-MS w moczu w diagnozowaniu uszkodzenia kanalików nerkowych
Maja Kazubek-Zemke 1 , Jacek Rybka 2 , Zofia Marchewka 1 , Wojciech Rybka 2 , Krzysztof Pawlik 3 , Anna Długosz 11. Department of Toxicology, Wrocław Medical University,Wrocław, Poland
2. Ludwik Hirszfeld Institute of Immunology and Experimental Therapy, Polish Academy of Sciences, Wrocław, Poland
3. Department of Toxicology, Wrocław Medical University,Wrocław, Poland; Ludwik Hirszfeld Institute of Immunology and Experimental Therapy, Polish Academy of Sciences, Wrocław, Poland
Opublikowany: 2014-11-14
DOI: 10.5604/17322693.1128846
GICID: 01.3001.0003.1369
Dostępne wersje językowe: pl en
Wydanie: Postepy Hig Med Dosw 2014; 68 : 1299-1311
Abstrakt
Przypisy
- 1. Boudonck K.J., Mitchell M.W., Német L., Keresztes L., Nyska A.,Shinar D., Rosenstock M.: Discovery of metabolomics biomarkers forearly detection of nephrotoxicity. Toxicol. Pathol., 2009; 37: 280-292
Google Scholar - 2. Bröer S.: Amino acid transport across mammalian intestinal andrenal epithelia. Physiol. Rev., 2008; 88: 249-286
Google Scholar - 3. Bruckner H., Haasmann S., Friedrich A.: Quantification of Daminoacids in human urine using GC-MS and HPLC. Amino Acids,1994; 6: 205-211
Google Scholar - 4. Chillarón J., Font-Llitjós M., Fort J., Zorzano A., Goldfarb D.S.,Nunes V.: Pathophysiology and treatment of cystinuria. Nat. Rev.Nephrol., 2010; 6: 424-434
Google Scholar - 5. Earle K.E., Seneviratne T., Shaker J., Shoback D.: Fanconi’s syndromein HIV+ adults: report of three cases and literature review. J.Bone. Miner. Res., 2004; 19: 714-721
Google Scholar - 6. Fiamegos Y.C., Stalikas C.D.: Gas chromatographic determinationof amino acids via one-step phase-transfer catalytic pentafluorobenzylation-preconcentration.J. Chromatogr. A., 2006; 1110: 66-72
Google Scholar - 7. Fiehn O.: Extending the breadth of metabolite profiling by gaschromatography coupled to mass spectrometry. TrAC, Trends Analyt.Chem.: 2008; 27: 261-269
Google Scholar - 8. Fonteh A.N., Harrington R.J., Harrington M.G:. Quantification offree amino acids and dipeptides using isotope dilution liquid chromatographyand electrospray ionization tandem mass spectrometry.Amino Acids, 2007; 32: 203-212
Google Scholar - 9. Gąsiorowski J., Marchewka Z., Łapiński Ł., Szymańska B., GłowackaK., Knysz B., Długosz A., Wiela-Hojeńska A.: The investigation of specificbiochemical markers in monitoring kidney function of drugaddicts. Postępy Hig. Med. Dośw., 2013; 5: 1214-1221
Google Scholar - 10. Goodacre R., Vaidyanathan S., Dunn W.B., Harrigan G.G., KellD.B.: Metabolomics by numbers: acquiring and understanding globalmetabolite data. Trends Biotechnol., 2004; 22: 245-252
Google Scholar - 11. Haag I.: The Reporter: Technical newsletter for analytical andchromatography. Sigma Aldrich, 2007: Issue 28
Google Scholar - 12. Kaspar H., Dettmer K., Chan Q., Daniels S., Nimkar S., DaviglusM.L., Stamler J., Elliott P., Oefner P.J.: Urinary amino acid analysis:a comparison of iTRAQ-LC-MS/MS, GC-MS, and amino acid analyzer.J. Chromatogr. B. Analyt. Technol. Biomed. Life Sci., 2009; 877:1838-1846
Google Scholar - 13. Kaspar H., Dettmer K., Gronwald W., Oefner P.J.: Advances inamino acid analysis. Anal. Bioanal. Chem., 2009; 393: 445-452
Google Scholar - 14. Knapp D.R.: Handbook of Analytical Derivatization Reactions.John Wiley & Sons, Inc. 1979
Google Scholar - 15. Kvitvang H.F., Andreassen T., Adam T., Villas-Bôas S.G., BruheimP.: Highly sensitive GC/MS/MS method for quantitation of amino andnonamino organic acids. Anal. Chem., 2011; 83: 2705-2711
Google Scholar - 16. Lamont L.S., McCullough A.J., Kalhan S.C.: Gender differencesin the regulation of amino acid metabolism. J. Appl. Physiol., 2003;95: 1259-1265
Google Scholar - 17. Le Boucher J., Charret C., Coudray-Lucas C., Giboudeau J.,Cynober L.: Amino acid determination in biological fluids by automatedion-exchange chromatography: performance of HitachiL-8500A. Clin. Chem., 1997; 43: 1421-1428
Google Scholar - 18. Long W.S., Seashore M.R., Siegel N.J., Bia M.J.: Idiopathic Fanconisyndrome with progressive renal failure: a case report and discussion.Yale J. Biol. Med., 1990; 63: 15-28
Google Scholar - 19. Luhe A., Hildebrand H.: Handbook of Toxicogenomics: Strategiesand Applications. Toxicogenomics Applied to Nephrotoxicity.Wiley-VCH, 2005; 471-472
Google Scholar - 20. Macpherson N.A., Moscarello M.A., Goldberg D.M.: Aminoaciduriais an earlier index of renal tubular damage than conventionalrenal disease markers in the gentamicin-rat model of acute renalfailure. Clin. Invest. Med., 1991; 14: 101-110
Google Scholar - 21. Mashego M.R., Rumbold K., De Mey M., Vandamme E., SoetaertW., Heijnen J.J.: Microbial metabolomics: past, present and futuremethodologies. Biotechnol. Lett., 2007; 29: 1-16
Google Scholar - 22. McQueen C.A.: Comprehensive Toxicology. Renal Toxicology,Elsevier 2009
Google Scholar - 23. Méndez J.A., Fernández-Sanmamed A.L., Gómez-Holgado M.S., Fernández-Rodríguez F.: Age-related reference values for plasmaamino acids in a Spanish population measured by gas chromatography-massspectrometry. J. Pediatr. Endocrinol. Metab., 2013; 26:333-341
Google Scholar - 24. Moore S., Spackman D.H., Stein W.H.: Automatic recording apparatusfor use in the chromatography of amino acids. Fed. Proc.,1958; 17: 1107-1115
Google Scholar - 25. Piraud M., Vianey-Saban C., Petritis K., Elfakir C., Steghens J.P.,Bouchu D.: Ion-pairing reversed-phase liquid chromatography/electrosprayionization mass spectrometric analysis of 76 underivatizedamino acids of biological interest: a new tool for the diagnosis ofinherited disorders of amino acid metabolism. Rapid Commun. MassSpectrom., 2005; 19: 1587-1602
Google Scholar - 26. Portilla D., Li S., Nagothu K.K., Megyesi J., Kaissling B., SchnackenbergL.: Metabolomic study of cisplatin-induced nephrotoxicity.Kidney Int., 2006; 69: 2194-2204
Google Scholar - 27. Proenza A.M., Crespi C., Roca P., Palou A.: Gender related differencesin the effect of aging on blood amino acid compartmentation.J. Nutritional Biochemistry, 2001; 12: 431-440
Google Scholar - 28. Ramautar R., Mayboroda O.A., Derks R.J., van Nieuwkoop C., vanDissel J.T., Somsen G.W., Deelder A.M., de Jong G.J.: Capillary electrophoresis-timeof flight-mass spectrometry using noncovalentlybilayer-coated capillaries for the analysis of amino acids in humanurine. Electrophoresis, 2008; 29: 2714-2722
Google Scholar - 29. Seabra V.F., Perianayagam M.C., Tighiouart H., Liangos O., DosSantos O.F., Jaber B.L.: Urinary α-GST and π-GST for prediction ofdialysis requirement or in-hospital death in established acute kidneyinjury. Biomarkers, 2011; 16: 709-717
Google Scholar - 30. Seow H.F., Bröer S., Bröer A., Bailey C.G., Potter S.J., CavanaughJ.A.: Hartnup disorder is caused by mutations in the gene encodingthe neutral amino acid transporter SLC6A19. Nat. Genet., 2004;36: 1003-1007
Google Scholar - 31. Shanaiah N., Desilva M.A., Nagana Gowda G.A., Raftery M.A.,Hainline B.E., Raftery D.: Class selection of amino acid metabolitesin body fluids using chemical derivatization and their enhanced 13CNMR. Proc. Natl. Acad. Sci. USA, 2007; 104: 11540-11544
Google Scholar - 32. Van de Poll M., Soeters P.B., Deutz N.E., Fearon K.C., Dejong C.H.:Renal metabolism of amino acids: its role in interorgan amino acidexchange. Am. J. Clin. Nutr., 2004; 79: 185-197
Google Scholar - 33. van der Werf M.J., Overkamp K.M., Muilwijk B., Coulier L., HankemeierT.: Microbial metabolomics: toward a platform with fullmetabolome coverage. Anal. Biochem., 2007; 370: 17-25
Google Scholar - 34. Verrey F., Ristic Z., Romeo E., Ramadan T., Makrides V., DaveM.H.: Novel renal amino acid transporters. Annu. Rev. Physiol., 2005;67: 557-572
Google Scholar - 35. Verrey F., Singer D., Ramadan T., Vuille-dit-Bille R.N., MariottaL., Camargo S.M.: Kidney amino acid transport. Pflugers Arch – EurJ. Physiol., 2009; 458: 53-60
Google Scholar