Zastosowanie profilowania aminokwasów metodą GLC-MS w moczu w diagnozowaniu uszkodzenia kanalików nerkowych

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 1

1. 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

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