Electrochemical determination of ciprofloxacin hydrochloride in pharmaceutical formulation, aquatic environ-ment and in fish tissues

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Date

2013

Journal Title

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Volume Title

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Article

Publisher

Int. J. Biol. Pharm. Res

Series Info

Int. J. Biol. Pharm. Res;Volume: 4 Issue: 6 Pages: 390-396

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Abstract

Two ciprofloxacin hydrochloride (CPX) selective electrodes were developed using dioctyl phthalate (DOP) as a plasticizer in a polymeric matrix of polyvinyl chloride (PVC). Sensor I was fabricated using tetrakis(4-chlorophenyl)borate (TpClPB) as an anionic exchanger without incorporation of an ionophore. Sensor II was developed using 2-hydroxy propyl β-cyclodextrin as an ionophore. Linear responses of CPX within a concentration range of 10-5-10-2 M, with slopes of 51.7 ± 0.31 and 48.7 ± 0.40 mV/ decade over pH range of 4-7 were obtained using sensors I and II, respectively. The selectivity coefficients of the developed sensors indicated excellent selectivity for CPX. The proposed method displayed useful analytical characteristics for determination of ciprofloxacin hydrochloride in pharmaceutical formulation , fish water and fish tissues with average recoveries of 100.91 ± 0.47, 96.42 ± 1.34 and 86.46 ± 1.28 , respectively for sensor I and 101.2 ± 0.37 , 97.26± 1.56 and 86.67± 1.70 , respectively for sensor II.

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Keywords

University of Aquatic environment, Ciprofloxacin hydrochloride, Fish tissues, Potentiometry, PVC

Citation

Abdel-Fattah L, El-Kosasy A, Abdel-Aziz L , Gaied M. Novel Ion Selective Electrodes for Determination of Lisinopril: A Study of Plasma and Plasma Proteins Effect. Journal of American Science. 2010; 6: 1115-1121. Abdel-Gawad F, Issa Y, Fahmy H, and Hussein H. Spectrophotometric Determination of Ciprofloxacin in Pure Form and in Tablets Through Charge-Transfer Complexation Reaction. Mikrochim. Acta. 1998; 130: 35-40. Avsec H, Gomišček S. A study of the prospects for a ciprofloxacin PVC coated wire ion-selective electrode based on 4- quinolone. Analytica Chimica Acta. 1992; 268: 307-309. Bondad-Reantaso MG, Subasinghe RP, Arthur JR, Ogawa K, Chinabut S, Adlard R, Tan Z, Shariff M. Disease and health management in Asian aquaculture. Veterinary Parasitol. 2005; 132: 249-272. Burkhead M, Wang H, Fallet M, and Gross E. Electrogenerated chemiluminescence: an oxidative-reductive mechanism between quinolone antibiotics and tris(2,2' bipyridyl)ruthenium(II). Anal. Chim. Acta. 2008; 613: 152-162. 396 Mamdouh R. Rezk et al. / International Journal of Biological & Pharmaceutical Research. 2013; 4(6): 390-396. Chung-Wei T, Chan-Shing L and Wei-Hsien W. Multi-Residue Determination of Sulfonamide and QuinoloneResidues in Fish Tissues by High Performance LiquidChromatography-Tandem Mass Spectrometry (LC-MS/MS). Journal of Food and Drug Analysis. 2012; 20: 674-680. Faria F, Souza M, Olivera M. Validation of a capillary zone electrophoresis method for the determination of ciprofloxacin, gatifloxacin, moxifloxacin and ofloxacin in pharmaceutical formulations. J. Braz. Chem. Soc. 2008; 19: 389-396. Farnoush F, Tahereh P, Parviz N, Mohammad RG. Ciprofloxacin Nano-Composite Carbon Paste and PVC Membrane potentiometric sensors. Int. J. Electrochem. Sci. 2012; 7: 3693 – 3705. Hermo MP, Nemutlu E, Kir S, Barron D and Barbosa J. Improved determination of quinolones in milk at their MRL levels using LC-UV, LC-FD, LC-MS and LC-MS/MS and validation in line with regulation 2002/657/EC. Anal. Chim. Acta. 2008; 613: 98-107. IUPAC Analytical Chemistry Division, Commission on Analytical Nomenclature. Pure Appl. Chem. 2000; 72: 1852-1856. Mahmoud NR, Mohamed IM, Stefan-van SR, Baroud H. A Novel Ciprofloxacin Selective Membrane Electrode. Current Pharmaceutical Analysis. 2012; 8: 334-338. Moody G, Thomas J. Selective Ions Sensitive Electrodes. Merrow Technical Library, 1971. O'Dea P, García A, Ordieres A, Blanco P and Smyth M. Determination of ciprofloxacin by differential pulse polarography. Electroanalysis. 1990; 2: 637–641. Rizk M, Belal F, Ibrahim F, Ahmed SM, Sheribah ZA. Derivative spectrophotometric analysis of 4-quinolone antibacterials in formulations and spiked biological fluids by their Cu (II) complexes. JAOAC Int. 2001; 84: 368-375. Rodriguez AI, Hariharan H, Nimrod S. Occurrence and Antimicrobial Drug Resistance of Potential Bacterial Pathogens from Shellfish, Including Queen Conchs (Strombus Gigas) and Whelks (Cittarium pica) in Grenada.Webmed Central Microbiology. 2011; 2(5):WMC001943 Samanidou V, Evaggelopoulou E, Trötzmüller M, Guo X, and Lankmayr E. Multi-residue determination of seven quinolones antibiotics in gilthead seabream using liquid chromatography-tandem mass spectrometry. J. Chromatogr. A. 2008; 1203: 115-23. Subasinghe R, Soto D, Jia J. Global aquaculture and its role in sustainable development. Reviews in Aquacul. 2009; 1: 2-9. The British Pharmacopeia, 2007. US Food and Drug Administration. Federal Register: May 22, 1997; 62(99). Zotou A, Miltiadou N. Sensitive LC determination of ciprofloxacin in pharmaceutical preparations and biological fluids with fluorescence detection. J. Pharm. Biomed. Anal. 2002; 28: 559-568.

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