Online pre-column derivatization with chromatographic separation to determine folic acid
dc.Affiliation | October University for modern sciences and Arts (MSA) | |
dc.contributor.author | Emara S. | |
dc.contributor.author | Masujima T. | |
dc.contributor.author | Zarad W. | |
dc.contributor.author | Kamal M. | |
dc.contributor.author | Ei-Bagary R. | |
dc.contributor.other | Pharmaceutical Chemistry Department | |
dc.contributor.other | Faculty of Pharmacy | |
dc.contributor.other | Misr International University | |
dc.contributor.other | Km 28 Ismailia Road | |
dc.contributor.other | Cairo | |
dc.contributor.other | Egypt; Analytical Molecular Medicine and Devices Laboratory | |
dc.contributor.other | Hiroshima University | |
dc.contributor.other | Graduate School of Biomedical Sciences | |
dc.contributor.other | 1-2-3 | |
dc.contributor.other | Kasumi | |
dc.contributor.other | Minami-ku | |
dc.contributor.other | Hiroshima | |
dc.contributor.other | 734-8551 | |
dc.contributor.other | Japan; Pharmaceutical Analytical Chemistry Department | |
dc.contributor.other | Faculty of Pharmacy | |
dc.contributor.other | Modern Sciences and Arts University | |
dc.contributor.other | 26 July Mehwar Road intersection with Wahat Road | |
dc.contributor.other | 6 October City | |
dc.contributor.other | Egypt; Pharmaceutical Chemistry Department | |
dc.contributor.other | Faculty of Pharmacy | |
dc.contributor.other | Cairo University | |
dc.contributor.other | Kasr El Aini St. | |
dc.contributor.other | Cairo 11562 | |
dc.contributor.other | Egypt | |
dc.date.accessioned | 2020-01-09T20:42:23Z | |
dc.date.available | 2020-01-09T20:42:23Z | |
dc.date.issued | 2013 | |
dc.description | Scopus | |
dc.description.abstract | A simple, sensitive, and selective online pre-column derivatization high-performance liquid chromatographic method was developed and validated for the first time to determine trace levels of folic acid (FA). An oxidant cerium (IV) trihydroxyhydroperoxide packed reactor was used for pre-column oxidation and was combined by column switching with a C18 analytical column for sample enrichment and separation. The method was based on oxidative cleavage of FA into highly fluorescence products, 2-amino-4-hydroxypteridine-6-carboxaldehyde and the corresponding 2-amino-4-hydroxypteridine-6-carboxylic acid, during the flow of 0.04 M phosphate buffer (pH 3.5) containing the analyte through packed reactor at a flow rate of 0.2 mL/min and 40�C. The fluorescent products were enriched on the head of the analytical column for the final separation. The separation was performed at room temperature using a mobile phase consisting of phosphate buffer (0.04 M, pH 3.5) and acetonitrile (90:10, v/v). The eluents were monitored at emission and excitation wavelengths of 463 and 367 nm, respectively. The method showed excellent recovery, precision and accuracy with detection limits of 0.067 ng/mL from 500 L of sample FA. The developed method was successfully applied to the determination of FA in pharmaceutical formulations and showed a recovery of 99.31% and a relative standard deviation of 1.72%. 2012 � The Author [2012]. | en_US |
dc.description.uri | https://www.scimagojr.com/journalsearch.php?q=24023&tip=sid&clean=0 | |
dc.identifier.doi | https://doi.org/10.1093/chromsci/bms170 | |
dc.identifier.doi | PubMed ID 23097580 | |
dc.identifier.issn | 219665 | |
dc.identifier.other | https://doi.org/10.1093/chromsci/bms170 | |
dc.identifier.other | PubMed ID 23097580 | |
dc.identifier.uri | https://t.ly/1VMzL | |
dc.language.iso | English | en_US |
dc.relation.ispartofseries | Journal of Chromatographic Science | |
dc.relation.ispartofseries | 51 | |
dc.subject | cerium | en_US |
dc.subject | folic acid | en_US |
dc.subject | peroxide | en_US |
dc.subject | article | en_US |
dc.subject | chemistry | en_US |
dc.subject | equipment | en_US |
dc.subject | high performance liquid chromatography | en_US |
dc.subject | isolation and purification | en_US |
dc.subject | limit of detection | en_US |
dc.subject | methodology | en_US |
dc.subject | pH | en_US |
dc.subject | reproducibility | en_US |
dc.subject | statistical model | en_US |
dc.subject | temperature | en_US |
dc.subject | Cerium | en_US |
dc.subject | Chromatography, High Pressure Liquid | en_US |
dc.subject | Folic Acid | en_US |
dc.subject | Hydrogen-Ion Concentration | en_US |
dc.subject | Limit of Detection | en_US |
dc.subject | Linear Models | en_US |
dc.subject | Peroxides | en_US |
dc.subject | Reproducibility of Results | en_US |
dc.subject | Temperature | en_US |
dc.title | Online pre-column derivatization with chromatographic separation to determine folic acid | en_US |
dc.type | Article | en_US |
dcterms.isReferencedBy | Lawrence, J.M., Watkins, M.L., Ershoff, D., Petitti, D.B., Chiu, V., Postlethwaite, D., Design and evaluation of interventions promoting periconceptional multivitamin use (2003) American Journal of Preventive Medicine, 25, pp. 17-24; Pathak, A., Rajput, S.J., Simultaneous determination of a ternary mixture of deoxylamine succinate, pyridoxine hydrochloride, and folic acid by the ratio spectra-zero-crossing, double divisor-ratio spectra derivative, and column high-performance liquid chromatographic methods (2008) Journal of the Association of Official Analytical Chemists International, 91, pp. 1059-1069; Nagaraja, P., Vasantha, R.A., Yathirajan, H.S., Spectrophotometric determination of folic acid in pharmaceutical preparations by coupling reactions with iminodibenzyl or 3-aminophenol or sodium molybdate-pyrocatechol (2002) Analytical Biochemistry, 307, pp. 316-321; Manzoori, J.L., Jouyban, A., Amjadi, M., Soleymani, J., Spectrofluorimetric determination of folic acid in tablets and urine samples using 1,10-phenanthroline-terbium probe (2011) Luminescence, 26, pp. 106-111; Huang, J.C., Li, D.J., Diao, J.C., Hou, J., Yuan, J.L., Zou, G.L., A novel fluorescent method for determination of peroxynitrite using folic acid as a probe (2007) Talanta, 72, pp. 1283-1287; Lapa, R.A.S., Lima, J.L.F.C., Reis, B.F., Santos, J.L.M., Zagatoo, E.A.G., Photochemical fluorimetric determination of folic acid in a multicommuted flow system (1997) Analytica Chimica Acta, 351, pp. 223-228; Blanco, C.C., Carretero, A.S., Gutierrez, A.F., Ceba, M.R., Fluorimetric determination of folic acid based on its reaction with the fluorogenic reagent fluorescamine (1994) Analytical Letters, 27, pp. 1339-1353; Zhang, B.T., Zhao, L., Lin, J.M., Determination of folic acid by chemiluminescence based on peroxomonosulfate-cobalt(II) system (2008) Talanta, 74, pp. 1154-1159; Arcot, J., Shrestha, A.K., Gusanov, U., Enzyme protein binding assay for determining folic acid in fortified cereal foods and stability of folic acid under different extraction conditions (2002) Food Control, 13, pp. 245-252; Cheung, R.H.F., Hughes, J.G., Marriott, P.J., Small, D.M., Investigation of folic acid stability in fortified instant Asian noodles by use of capillary electrophoresis (2009) Food Chemistry, 112, pp. 507-514; Cheung, R.H.F., Morrison, P.D., Small, D.M., Marriott, P.J., Investigation of folic acid stability in fortified instant noodles by use of capillary electrophoresis and reversed-phase high performance liquid chromatography (2008) Journal of Chromatography A, 1213, pp. 93-99; Zhao, S., Yuan, H., Xie, C., Xiao, D., Determination of folic acid by capillary electrophoresis with chemiluminescence detection (2006) Journal of Chromatography A, 1107, pp. 290-293; Flores, J.R., Pen Alvo, G.C., Mansilla, A.E., Go Mez, M.J.R., Capillary electrophoretic determination of methotrexate, leucovorin and folic acid in human urine (2005) Journal of Chromatography B, 819, pp. 141-147; Zhao, S., Zhang, P., Liang, X., Hua, D., Ma, T., Pei, G., A new potassium tetrabromoaurate (III)-luminol chemiluminescence system for the determination of folic acid in milk powder (2012) Journal of Food Science, 77, pp. C102-C106; Zhang, Z.Q., Tang, Y., Solid-phase reactor flow-injection on-line oxidizing spectrofluorimetry for determination and dissolution studies of folic acid (2005) Analytical and Bioanalytical Chemistry, 381, pp. 932-936; Song, Z., Wang, L., Chemiluminescence inhibition assay for folic acid using flow injection analysis (2003) Phytochemical Analysis, 14, pp. 216-220; Song, Z., Zhou, X., Chemiluminescence flow sensor for folic acid with immobilized reagents (2001) Spectrochimica Acta Part A, 57, pp. 2567-2574; Deconinck, E., Crevits, S., Baten, P., Courselle, P., De Beer, J., A validated ultra high pressure liquid chromatographic method for qualification and quantification of folic acid in pharmaceutical preparations (2011) Journal of Pharmaceutical and Biomedical Analysis, 54, pp. 995-1000; Chaudhary, A., Wang, J., Prabhu, S., Development and validation of a high-performance liquid chromatography method for the simultaneous determination of aspirin and folic acid from nano-particulate systems (2010) Biomedical Chromatography, 24, pp. 919-925; Amidzic, R., Brboric, J., Cudina, O., Vladimirov, S., RP-HPLC Determination of vitamins B1, B3, B6, folic acid and B12 in multivitamin tablets (2005) Journal of the Serbian Chemical Society, 70, pp. 1229-1235; Chatzimichalakis, P.F., Samanidou, V.F., Verpoorte, R., Papadoyannis, I.N., Development of a validated HPLC method for the determination of B-complex vitamins in pharmaceuticals and biological fluids after solid phase extraction (2004) Journal of Separation Science, 27, pp. 1181-1188; Kledjus, B., Petrlova, J., Pote Sil, D., Adam, V., Mikelova, R., Vacek, J., Simultaneous determination of water-and fat-soluble vitamins in pharmaceutical preparations by high-performance liquid chromatography coupled with diode array detection (2004) Analytica Chimica Acta, 520, pp. 57-67; Ho Ller, U., Brodhag, C., Kno Bel, A., Hofmann, P., Spitzer, V., Automated determination of selected water-soluble vitamins in tablets using a bench-top robotic system coupled to reversed-phase (RP-18) HPLC with UV detection (2003) Journal of Pharmaceutical and Biomedical Analysis, 31, pp. 151-158; Kall, M.A., N�rgaard, P., Pedersen, S.J., Leth, T., Optimised extraction of folic acid from multivitamin-mineral preparations for liquid chromatographic analysis (2000) Journal of Pharmaceutical and Biomedical Analysis, 23, pp. 437-445; Kaczkow, G., Anuszewska, E., The use of HPLC method for determination of the folic acid in multi-component vitamin preparations (2000) Acta Poloniae Pharmaceutica, 57, pp. 257-257; The United States Pharmacopeia, Asian Edition, (2005), pp. 870-871; Ndaw, S., Bergaentzle, M., Aoude-Werner, D., Lahe Ly, S., Hasselmann, C., Determination of folates in foods by high-performance liquid chromatography with fluorescence detection after precolumn conversion to 5-methyltetrahydrofolates (2001) Journal of Chromatography A, 928, pp. 77-90; Durand, P., Fortin, L.J., Lussier-Cacan, S., Davignon, J., Blache, D., Hyperhomocysteinemia induced by folic acid deficiency and methionine load-applications of a modified HPLC method (1996) Clinica Chimica Acta, 252, pp. 83-93; Ichinose, N., Tsuneyoshi, T., Kato, M., Suzuki, T., Ikeda, S., Fluorescent high-performance liquid chromatography of folic acid and its derivatives using permanganate as a fluorogenic reagent (1993) Fresenius Journal of Analytical Chemistry, 346, pp. 841-846; Leeming, R.J., Pollock, A., Melville, L.J., Hamon, C.G.B., Measurement of 5-methyltetrahydrofolic acid in man by high-performance liquid chromatography (1990) Metabolism, 39, pp. 902-904; Holt, D.L., Wehling, R.L., Zeece, M.G., Determination of native folates in milk and other dairy products by high-performance liquid chromatography (1988) Journal of Chromatography, 449, pp. 271-279; Gregory, J.F., Sartain, D.B., Day, B.P., Fluorometric determination of folacin in biological materials using high performance liquid chromatography (1984) Journal of Nutrition, 114, pp. 341-353; Emara, S., Razee, S., El-Shorbagy, A.-N., Masujima, T., Flow injection method for the determination of methotrexate with a columnpacked oxidizing agent (1996) Analyst, 121, pp. 183-188; Emara, S., Kamal, M., Abdel Kawi, M., On-line sample cleanup and enrichment chromatographic technique for the determination of ambroxol in human serum (2012) Journal of Chromatographic Science, 50, pp. 91-96 | |
dcterms.source | Scopus |