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dc.contributor.authorZakrzewski, Robert
dc.contributor.authorZgagacz, W.
dc.contributor.authorUrbaniak, Katarzyna
dc.contributor.authorChwatko, Grażyna
dc.contributor.authorNowicki, A.
dc.date.accessioned2021-08-25T10:58:27Z
dc.date.available2021-08-25T10:58:27Z
dc.date.issued2020
dc.identifier.issn1570-0232
dc.identifier.urihttp://hdl.handle.net/11089/38840
dc.description.abstractHydrogen sulfide is a toxic gas involved in the regulation of some essential biological processes. A novel, precise, accurate and rapid method based on high-performance liquid chromatography with diode array detection for the determination of sulfide ions in human urine sample is proposed. The method involves the derivatization of sulfide with pyrylium salts – (2,4,6-triphenylpyrylium hydrogensulfate(VI) (L1) and 4-[p-(N,N-dimethylamino)phenyl]-2,6-diphenylpyrylium chlorate(VII) (LN1). The separation occurs on InfinityLab Poroshell 120 EC C18 column using acetonitrile and phosphate buffer as a mobile phase. The detectors utilized a wavelength of 371 or 580 nm. The calibration curves were linear in the range of 2–150 μmol L−1 and 1–50 μmol L−1 for L1 and LN1 derivatives, respectively. The samples were found to be stable from sample collection to final analysis. The method was successfully applied to samples from apparently healthy volunteers.pl_PL
dc.language.isoenpl_PL
dc.publisherElsevierpl_PL
dc.relation.ispartofseriesJournal of Chromatography B;1157
dc.rightsUznanie autorstwa 4.0 Międzynarodowe*
dc.rights.urihttp://creativecommons.org/licenses/by/4.0/*
dc.subjectjon siarczkowypl_PL
dc.subjectsole piryliowepl_PL
dc.subjectwysokosprawna chromatografia cieczowa (HPLC)pl_PL
dc.subjectdetektor diodowy (DAD)pl_PL
dc.subjectmoczpl_PL
dc.subjectSulfide ionspl_PL
dc.subjectPyrylium saltspl_PL
dc.subjectHigh performance liquid chromatography with diode detector (DAD)pl_PL
dc.subjectHuman urine samplepl_PL
dc.titleThe use of high-performance liquid chromatography with diode array detector for the determination of sulfide ions in human urine samples using pyrylium saltspl_PL
dc.typeArticlepl_PL
dc.page.number7pl_PL
dc.contributor.authorAffiliationDepartment of Environmental Chemistry, Faculty of Chemistry, University of Lodz, Polandpl_PL
dc.contributor.authorAffiliationDepartment of Organic and Applied Chemistry, Faculty of Chemistry, University of Lodz, Polandpl_PL
dc.identifier.eissn1873-376X
dc.referencesL. Zhang, Y. Wang, Y. Li, L. Li, S. Xu, X. Feng, S. Liu, Hydrogen Sulfide (H2S) – Releasing Compounds: Therapeutic Potential in Cardiovascular Diseases, Front. Pharmacol. 9 (2018) 1066pl_PL
dc.referencesM. Ali, C. Ping, Y.-Y.-P. Mok, L. Ling, M. Whiteman, M. Bhatia, P.K. Moore, Regulation of vascular nitric oxide in vitro and in vivo; a new role for endogenous hydrogen sulphide? British J. Pharmacol. 149 (2006) 625–634.pl_PL
dc.referencesJ.E. Doeller, T.S. Isbell, G. Benavides, J.V. Koenitzer, H. Patel, R.P. Patel, J.R. Lancaster, V.M. Darley-Usmar, D.W. Kraus, Polarographic measurement of hydrogen sulfide production and consumption by mammalian tissues, Anal. Biochem. 341 (2005) 40–51.pl_PL
dc.referencesE. Łowicka, J. Bełtowski, Hydrogen sulfide (H2S) – the third gas of interest for pharmacologists, Pharmacol. Rep. 59 (2007) 4–24.pl_PL
dc.referencesA. Tangermana, Measurement and biological significance of the volatile sulfur compounds hydrogen sulfide, methanethiol and dimethyl sulfide in various biological matrices, J. Chromatogr. B 877 (2009) 3366–3377.pl_PL
dc.referencesP. Kamoun, Endogenous production of hydrogen sulfide in mammals, Amino Acids 26 (2004) 243–254pl_PL
dc.referencesB.S. Kasinath, D. Feliers, H.J. Lee, Hydrogen sulfide as a regulatory factor in kidney health and disease, Biochem. Pharmacol. 149 (2018) 29–41pl_PL
dc.referencesH.J. Sun, Z.Y. Wu, L. Cao, M.Y. Zhu, T.T. Liu, L. Guo, Y. Lin, X.W. Nie, J.S. Bian, Hydrogen Sulfide: Recent Progression and Perspectives for the Treatment of Diabetic Nephropathy, Molecules 24 (2019) 285.pl_PL
dc.referencesY. Li, J. Fan, S. Yan, Z. Gao, Q. Tang, F. Liu, L. Ding, Non-covalent binary sensing platform for ratiometric and colorimetric detection of sulfide anion in aqueous solution and human urine, J. Photochem. Photobiol. A 383 (2019) 111995pl_PL
dc.referencesO. Karmin, L.Y.L. Siow, Metabolic Imbalance of Homocysteine and Hydrogen Sulfide in Kidney Disease, Curr. Med. Chem. 25 (2008) 367–377.pl_PL
dc.referencesI. Lobb, E. Sonke, G. Aboalsamh, A. Sener, Hydrogen sulphide and the kidney: Important roles in renal physiology and pathogenesis and treatment of kidney injury and disease, Nitric Oxide 46 (2015) 55–65pl_PL
dc.referencesP. Nagy, Z. Pálinkás, A. Nagy, A. Vasas, Chemical aspects of hydrogen sulfide measurements in physiological samples, BBA 2014 (1840) 876–891.pl_PL
dc.referencesT. Ramstad, A.H. Bates, T.J. Yellig, S.J. Borchert, K.A. Mills, Analysis of hydrogen sulfide gas from a pharmaceutical drug formulation by cryofocused headspace gas chromatography, Analyst 120 (1995) 2775–2780.pl_PL
dc.referencesJ.W. O’Reilly, G.W. Dicinoski, M.J. Shaw, P.R. Haddad, Chromatographic and electrophoretic separation of inorganic sulfur and sulfur–oxygen species, Anal. Chim. Acta 432 (2001) 165–192.pl_PL
dc.referencesJ. Font, J. Gutiérrez, J. Lalueza, X. Pérez, Determination of sulfide in the leather industry by capillary electrophoresis, J. Chromatogr. A 740 (1996) 125–132.pl_PL
dc.referencesF. Hissner, J. Mattusch, K. Heinig, Quantitative determination of sulfur-containing anions in complex matrices with capillary electrophoresis and conductivity detection, J. Chromatogr. A 848 (1999) 503–513.pl_PL
dc.referencesF. Hissner, J. Mattusch, K. Heinig, Quantitative determination of sulfur-containing anions in complex matrices with capillary electrophoresis and conductivity detection, J. Chromatogr. A 848 (1999) 503–513.pl_PL
dc.referencesB. Divjak, W. Goessler, Ion chromatographic separation of sulfur-containing inorganic canions with an ICP–MS as element-specific detector, J. Chromatogr. A 844 (1999) 161–169.pl_PL
dc.referencesB. López-Ruiz, Advances in the determination of inorganic anions by ion chromatography, J. Chromatogr. A 881 (2000) 607–627.pl_PL
dc.referencesY. Miura, M. Tsubamoto, T. Koh, Ion Chromatographic Determination of Sulfide, and Thiosulfate in Mixtures by Means of Their Postcolumn Reactions with Iodine, Anal. Sci. 10 (1994) 595–600.pl_PL
dc.referencesY. Miura, K. Fukasawa, T. Koh, Determination of sulfur anions at the ppb level by ion chromatography utilizing their catalytic effects on the postcolumn reaction of iodine with azide, J. Chromatogr. A 804 (1998) 143–150pl_PL
dc.referencesT. Okutani, K. Yamakawa, A. Sakuragawa, R. Gotoh, Determination of a micro amount of sulfide by ion chromatography with amperometric detection after coprecipitation with basic zinc carbonate, Anal. Sci. 9 (1993) 731–734.pl_PL
dc.referencesI.G. Casella, R. Marchese, Sulfite oxidation at a platinum glassy carbon electrode. Determination of sulfite by ion exclusion chromatography with amperometric detection, Analytica Chim. Acta 311 (1995) 199–210.pl_PL
dc.referencesR. Leubolt, W. Klein, Determination of sulphite and ascorbic acid by high-performance liquid chromatography with electrochemical detection, J. Chromatogr. A 640 (1993) 271–277pl_PL
dc.referencesT. Togawa, M. Ogawa, M. Nawata, Y. Ogasawara, K. Kawanabe, S. Tanabe, High performance liquid chromatographic determination of bound sulfide and sulfite and thiosulfate at their low levels in human serum by pre-column fluorescence derivatization with monobromobimane, Chem. Pharm. Bull. 40 (1992) 3000–3004.pl_PL
dc.referencesN.S. Lawrence, J. Davis, R.G. Compton, Analytical strategies for the detection of sulfide: a review, Talanta 52 (2000) 771–784pl_PL
dc.referencesJ. Radford-Knoery, G.A. Cutter, Determination of carbonyl sulfide and hydrogen sulfide species in natural waters using specialized collection procedures and gas chromatography with flame photometric detection, Anal. Chem. 65 (1993) 976–982.pl_PL
dc.referencesP.R. Berube, P.D. Parkinson, E.R. Hall, Measurement of Reduced Sulphur Compounds in Aqueous Matrices by Direct Injection into a Gas Chromatograph with Flame Photometric Detector, J. Chromatogr. A 830 (1999) 485–489.pl_PL
dc.referencesK. Funazo, M. Tanaka, K. Morita, M. Kamino, T. Shono, H.L. Wu, Pentafluorobenzyl para-toluenesulfonate as a new derivatizing reagent for gas-chromatographic determination of anions, J. Chromatogr. A 346 (1985) 215–225.pl_PL
dc.referencesY. Ogasawara, K. Ishii, T. Togawa, S. Tanabe, Determination of trace amounts of sulphide in human red blood cells by high-performance liquid chromatography with fluorimetric detection after derivatization with p-phenylenediamine and iron(III), Analyst 116 (1991) 1359–1363.pl_PL
dc.referencesC. Gru, P.M. Sarradin, H. Legoff, S. Narcon, J.C. Caprais, F.H. Lallier, Determination of reduced sulfur compounds by high-performance liquid chromatography in hydrothermal seawater and body fluids from Riftia pachyptila, Analyst 123 (1998) 1289–1293.pl_PL
dc.referencesB.K. Reese, D.W. Finneran, H.J. Mills, M.X. Zhu, J.W. Morse, Examination and Refinement of the Determination of Aqueous Hydrogen Sulfide by the Methylene Blue Method, Aquat. Geochem. 17 (2011) 567–582pl_PL
dc.referencesD. Tang, P.H. Santschi, Sensitive determination of dissolved sulfide in estuarine water by solid-phase extraction and high-performance liquid chromatography of methylene blue, J. Chromatogr. A 883 (2000) 305–309.pl_PL
dc.referencesP.B. Høj, B.L. Møller, Acid-labile sulfide and zero-valence sulfur in plant extracts containing chlorophyll and ionic detergents, Anal. Biochem. 164 (1987) 307–314.pl_PL
dc.referencesW. Ciesielski, K. Dyńska-Kukulska, R. Zakrzewski, A. Hekner, Analysis of Sulfide Ions by Densitometric Thin-Layer Chromatography and Use of TLSee Software, J. Planar Chromatography 23 (2010) 343–347.pl_PL
dc.referencesŻ. Rembisz, R. Zakrzewski, W. Ciesielski, M. Skowron, R. Martínez-Máñez, ThinLayer Chromatographic Image Analysis for the Determination of Sulfide Ions Using Pyrylium Cations, J. Planar Chromatography 27 (2014) 240–244. [pl_PL
dc.referencesD. Jiménez, R. Martínez-Mánez, F. Sancenón, J.V. Ros-Lis, A. Benito, J. Soto, A new chromo-chemodosimeter selective for sulfide anion, J. Am. Chem. Soc. 125 (2003) 9000–9001pl_PL
dc.referencesŻ. Rembisz, D. Bzdurska, J. Obiedzińska, R. Martínez-Mánez, R. Zakrzewski, A derivatization approach using pyrylium salts for the sensitive andsimple determination of sulfide in spring water by high performanceliquid chromatography, J. Chromatogr. A 1407 (2015) 184–192.pl_PL
dc.referencesK. Kuśmierek, R. Głowacki, E. Bald, Analysis of urine for cysteine, cysteinylglycine, and homocysteine by high-performance liquid chromatography, Analyt. Bioaanalyt. Chem. 385 (2006) 855–860pl_PL
dc.referencesV. Ravichandran, S. Shalini, K.M. Sundram, R. Harish, Validation of analytical methods – strategies & importance, Int. J. Pharm. Pharm. Sci. 2 (2010) 18–22pl_PL
dc.referencesS.M.R. Wille, F.T. Peters, V.D. Fazio, N. Samyn, Practical aspects concerning validation and quality control for forensic and clinical bioanalytical quantitative methods, Accred. Qual. Assur. 16 (2011) 279–292.pl_PL
dc.referencesA. Tangerman, M.T. Meuwese-Arends, J.B.M.J. Jansen, Cause and composition of foetor hepaticus, Lancet 343 (1994) P483.pl_PL
dc.referencesM. Shariati-Rad, N. Salarmand, F. Jalilvand, Determination of hydrogen sulfide and hydrogen peroxide in complex samples of milk and urine by spectroscopic standard addition data and chemometrics methods, RSC Adv. 7 (2017) 28626–28636pl_PL
dc.identifier.doi10.1016/j.jchromb.2020.122309
dc.disciplinenauki chemicznepl_PL


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