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ARTICLES

Determination of Captopril in Biofluids by Luminol–Chloroauric Acid–Lysozyme Chemiluminescence

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REFERENCES

  • Chen, L.; Li, N.B.; Luo, H.Q. Determination of lead(II) by Flow–Injection Analysis using Luminol–Potassium Periodate Post–Chemiluminescence Reaction. Instrum. Sci. Technol. 2010, 38(2), 151–164.
  • Yaqoob, M.; Folgado, B.B.; Nabi, A.; Worsfold, P.J. Determination of Nitrate and Nitrite in Fresh Waters using Flow–Injection with Luminol Chemiluminescence Detection. Luminescence 2012, 27(5), 419–425.
  • Zhao, H.X.; Tan, X.J.; Song, Z.H. Determination of Picogram Amounts of Dihydroxybenzenes in Water Samples with Luminol–Lysozyme Chemiluminescence System. J. Chin. Chem. Soc. 2012, 59(12), 1512–1519.
  • Serrano, J.M.; Silva, M. Rapid and Sensitive Determination of Aminoglycoside Antibiotics in Water Samples using a Strong Cation–Exchange Chromatography Non–Derivatisation Method with Chemiluminescence Detection. J. Chromatogr. A 2006, 1117(2), 176–183.
  • Li, Y.J.; Zhang, J.J.; Xiong, X.Y.; Luo, K.; Guo, J.; Shen, M.X.; Wang, J.J.; Song, Z.H. Determination of Picogram Quantities of Chlortoluron in Soil Samples by Luminol–Chitosan Chemiluminescence System. Environ. Sci. Pollut. Res. 2014, 21(11), 7204–7210.
  • Song, J.J.; Xu, M.X.; Zhao, K.; Deng, A.P.; Li, J.G. Flow Injection Chemiluminescence Immunosensor for the Determination of Clenbuterol by Immobilizing Coating–Antigen on Carboxylic Resin Beads. Anal. Meth. 2014, 6(9), 3152–3158.
  • Chen, D.H.; Song, Z.H.; Yue, Q.L. Sensitive Assay for Picogram Levels of Sudan I in Chili Foodstuffs by Flow Injection Chemiluminescence. Anal. Meth. 2010, 2(9), 1316–1319.
  • Niu, L.C.; Song, Z.H.; Chen, D.H. Determination of Sudan IV in Hot Chilli Powder with Luminol/Dissolved Oxygen Chemiluminescence System. J. Sci. Food Agric. 2010, 90(2), 338–342.
  • Rishi, L.; Yaqoob, M.; Waseem, A.; Nabi, A. Vitamin A Determination in Milk Samples based on the Luminol–Periodate Chemiluminescence System. J. Nutr. Sci. Vitaminol. 2014, 60(1), 9–16.
  • Tao, X.Q.; Shen, J.Z.; Cao, X.Y.; Wang, Z.H.; Wu, X.P.; Jiang, H.Y. Simultaneous Determination of Chloramphenicol and Clenbuterol in Milk with Hybrid Chemiluminescence Immunoassays. Anal. Meth. 2014, 6(4), 1021–1027.
  • Guo, J.; Luo, K.; Chen, D.H.; Tan, X.J.; Song, Z.H. A Rapid and Sensitive Method for the Determination of Dibutyl Phthalate in Wine by Flow Injection Chemiluminescence Analysis. J. Food Compos. Anal. 2013, 31(2), 226–231.
  • Akshath, U.S.; Sagaya Selvakumar, L.; Thakur, M.S. Detection of Formaldehyde in Food Samples by Enhanced Chemiluminescence. Anal. Meth. 2012, 4(3), 699–704.
  • Alam, M.; Kamruzzaman, M.; Dang, T.D.; Lee, S.H.; Kim, Y.H.; Kim, G.M. Enzymeless Determination of Total Sugar by Luminol–Tetrachloroaurate Chemiluminescence on Chip to Analyze Food Samples. Anal. Bioanal. Chem. 2012, 404(10), 3165–3173.
  • Shen, M.X.; Wu, M.; Tan, X.J.; Song, Z.H. Study on the Inclusion Interaction between Sulfobutylether–β–Cyclodextrin and Clozapine by Flow Injection Chemiluminescence. Instrum. Sci. Technol. 2014, 42(1), 46–58.
  • You, J.D.; Song, Z.H. Determination of Picomole Concentrations of Aluminum(III) in Human Saliva and Urine by a Luminol–Carboxymethyl Chitosan Chemiluminescence System. Instrum. Sci. Technol. 2013, 41(5), 524–534.
  • Wolyniec, E.; Niedzwiedzka, U.; Kojlo, A. Flow–Injection Chemiluminescence Determination of Catecholamines. Instrum. Sci. Technol. 2007, 35(2), 219–231.
  • Yu, C.L.; Tang, Y.H.; Han, X.N.; Wu, S.J. Flow Injection Chemiluminescence Analysis of Diphenhydramine Hydrochloride and Chlorpheniramine Maleate. Instrum. Sci. Technol. 2006, 34(5), 529–536.
  • Khan, M.N.; Jan, M.R.; Shah, J.; Lee, S.H.; Kim, Y.H. A Highly Sensitive and Simple Method based on Increased CL Intensity of a Luminol–H2O2 System has been Used for Determination of Sulpiride Content in Drugs and Biological Fluids. Luminescence 2013, 28(6), 915–921.
  • Elgawish, M.S.; Shimomai, C.; Kishikawa, N.; Ohyama, K.; Nakashima, K.; Kuroda, N. Microplate Analytical Method for Quinones by Pulse Photo–Irradiation and Chemiluminescence Detection. Analyst 2012, 137(20), 4802–4808.
  • Safavi, A.; Absalana, G.; Bamdada, F. Effect of Gold Nanoparticle as a Novel Nanocatalyst on Luminol−Hydrazine Chemiluminescence System and its Analytical Application. Anal. Chim. Acta 2008, 610(2), 243–248.
  • Du, J.X.; Quan, J.; Wang, Y.D. Chemiluminescence Determination of Timolol Maleate by Gold Nanoparticles–Catalyzed Luminol–N–Bromosuccinimide System. Talanta 2012, 90, 117–122.
  • Giokasa, D.L.; Christodouleasb, D.C.; Vlachoua, I.; Vlessidis, A.G.; Calokerinos, A.C. Development of a Generic Assay for the Determination of Total Trihydroxybenzoate Derivatives based on Gold–Luminol Chemiluminescence. Anal. Chim. Acta 2013, 764, 70–77.
  • Niazov, T.; Shlyahovsky, B.; Willner, I. Photoswitchable Electrocatalysis and Catalyzed Chemiluminescence using Photoisomerizable Monolayer–Functionalized Surfaces and Pt Nanoparticles. J. Amer. Chem. Soc. 2007, 129(20), 6374–6375.
  • Deng, M.; Xu, S.J.; Chen, F.N. Enhanced Chemiluminescence of the Luminol Hydrogen Peroxide System by BSA–Stabilized Au Nanoclusters as a Peroxidase Mimic and its Application. Anal. Meth. 2014, 6(9), 3117–3123.
  • Cui, H.; Wang, W.; Duan, C.F.; Dong, Y.P.; Guo, J.Z. Synthesis, Characterization, and Electrochemiluminescence of Luminol–Reduced Gold Nanoparticles and Their Application in a Hydrogen Peroxide Sensor. Chem. Eur. J. 2007, 13(24), 6975–6984.
  • Sun, Y.H.; Zhang, Z.J.; Zhang, X.F. Determination of Captopril by High–Performance Liquid Chromatography with Direct Electrogenerated Chemiluminescence. Spectrochim. Acta Part A 2013, 105, 171–175.
  • Rezende, K.R.; Mundim, I.M.; Teixeira, L.S.; Souza, W.C.; Ramos, D.R.; Cardoso, C.R.; Souza, I.C.; Gratao, M.Z.; Bellorio, K.B. Determination of Captopril in Human Plasma, using Solid Phase Extraction and High–Performance Liquid Chromatography, Coupled to Mass Spectrometry: Application to Bioequivalence Study. J. Chromatogr. B Anal. Technol. Biomed. Life Sci. 2007, 850(1), 59–67.
  • El–Didamony, A.M.; Erfan, E.A.H. Utilization of Oxidation Reactions for the Spectrophotometric Determination of Captopril using Brominating Agents. Spectrochim. Acta Part A 2010, 75(3), 1138–1145.
  • Mazurek, S.; Szostak, R. Quantitative Determination of Captopril and Prednisolone in Tablets by FT–Raman Spectroscopy. J. Pharm. Biomed. Anal. 2006, 40(5), 1225–1230.
  • Economou, A.; Themelis, D.G.; Theodoridis, G. Sensitive Determination of Captopril by Flow Injection Analysis with Chemiluminescence Detection based on the Enhancement of the Luminol Reaction. Anal. Chim. Acta 2002, 463(2), 249–255.
  • Du, J.X.; Li, Y.H.; Lu, J.R. Flow Injection Chemiluminescence Determination of Captopril based on its Enhancing Effect on the Luminol–Ferricyanide/Ferrocyanide Reaction. Luminescence 2002, 17(3), 165–167.
  • Zhang, G.B.; Tang, Y.H.; Li, H.Y.; Yu, H.L.; Sun, S.J. Chemiluminescence of Potassium Permanganate–Glyoxal–Sulfur Contained Compound System. Anal. Lett. 2009, 42(2), 440–459.
  • Song, Z.H.; Hou, S.; Yu, X.Y.; Xie, X.F.; Shao, X.D. In vitro Monitoring of Picogram Levels of Captopril in Human Urine using Flow Injection Chemiluminescence with Immobilized Reagent Technique. Anal. Lett. 2006, 39, 1115–1127.
  • Khan, P.; Idrees, D.; Moxley, M.A.; Corbett, J.A.; Ahmad, F.; von Figura, G.; Sly, W.S.; Waheed, A.; Hassan, M.I. Luminol–based Chemiluminescent Signals: Clinical and Non–Clinical Application and Future Uses. Appl. Biochem. Biotechnol. 2014, 173(2), 333–355.
  • Kugimiya, A.; Fukada, R.; Funamo, D.A. Luminol Chemiluminescence Method for Sensing Histidine and Lysine using Enzyme Reactions. Anal. Biochem. 2013, 443(1), 22–26.
  • Powe, A.M.; Das, S.; Lowry, M.; El−Zahab, B.; Fakayode, S.O.; Geng, M.L.; Baker, G.A.; Wang, L.; McCarroll, M.E.; Patonay, G.; Li, M.; Aljarrah, M.; Neal, S.; Warner, I.M. Molecular Fluorescence, Phosphorescence, and Chemiluminescence Spectrometry. Anal. Chem. 2010, 82(12), 4865–4894.
  • Iranifama, M.; Sorouraddinb, M.H. Flow Injection Chemiluminescence Determination of Naphazoline Hydrochloride in Pharmaceuticals. Luminescence 2014, 29(1), 48–51.
  • Das, S.; Powe, A.M.; Baker, G.A.; Valle, B.; El−Zahab, B.; Sintim, H.O.; Lowry, M.; Fakayode, S.O.; McCarroll, M.E.; Patonay, G.; Li, M.; Strongin, R.M.; Geng, M.L.; Warner, I.M. Molecular Fluorescence, Phosphorescence, and Chemiluminescence Spectrometry. Anal. Chem. 2012, 84(2), 597–625.
  • Sloand, J.A.; Izzo, J.L. Captopril Reduces Urinary Cystine Excretion in Cystinuria. Arch. Intern. Med. 1987, 147(8), 1409–1412.
  • Sypniewski, S.; Bald, E. Determination of Captopril and its Disulphides in Whole Human Blood and Urine by High–Performance Liquid Chromatography with Ultraviolet Detection and Precolumn Derivatization. J. Chromatogr. A 1996, 729(1), 335–340.
  • Wang, Z.M.; Song, Z.H.; Chen, D.H. Study on the Binding Behavior of Bovine Serum Albumin with Cephalosporin Analogues by Chemiluminescence Method. Talanta 2010, 83(2), 312–319.
  • Turner, M.A.; Howell, P.L. Structures of Partridge Egg–White Lysozyme with and without Tri–N–acetylchitotriose Inhibitor at 1.9 Å Resolution. Protein Sci. 1995, 4(3), 442–449.
  • Wang, Z.M.; Tan, X.J.; Chen, D.H.; Yue, Q.L.; Song, Z.H. Study on the Binding Behavior of Lysozyme with Cephalosporin Analogues by Fluorescence Spectroscopy. J. Fluoresc. 2009, 19(5), 801–808.

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