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Determination of Oxolinic Acid in Paddy Soil by HPLC Coupled with UV Detector  

Lo, Seog-Cho (College of Life Science and Natural Resources, Wonkwang University)
Ma, Sang-Yong (Division of Life Resource Science, Woosuk University)
Han, Seong-Soo (College of Life Science and Natural Resources, Wonkwang University)
Publication Information
The Korean Journal of Pesticide Science / v.9, no.4, 2005 , pp. 303-310 More about this Journal
Abstract
This study was performed to examine analytical method of a quinolone compound, oxolinic acid in paddy soil by HPLC coupled with UV detector. Two types of soil texture in different regions were used for this experiment. Oxolinic acid was extracted by a 4 M-KOH : MeOH(1 : 3, v/v) mixtures and acidified followed by liquid-liquid partitioning in dichloromethane. Dichlormethane layer was dehydrated, evaporated and analyzed by HPLC (262 nm). Retention time was 10.2 min. The standard calibration curve of oxolinic acid showed linearity ($r^2>0.999^{**}$, y=378.99x+135.08) in the range of $1{\sim}40$ ng. The mean recoveries, evaluated from fortified soil samples at two concentration levels of 0.2 mg/kg and 1.0 mg/kg, were $90.9{\pm}4.52%$(C.V. 4.97%) and $95.0{\pm}0.23%$(C.V. 0.24%) for soil 1 and $92.2{\pm}1.15%$(C.V. 1.25%) and $93.1{\pm}0.31%$ (C.V. 0.33%) for soil 2, respectively The detection limits of two types of soils were same as 0.05 ppm. Overall, the present analytical method of oxolinic acid by HPLC coupled with UV detector seems to be used reasonably.
Keywords
oxolinic acid; HPLC; UV detector; residue; paddy soil;
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1 Chen, C. R., M. Malik, M. Snyder and K. Drlica (1996) DNA Gyrase and Topoisomerase IV on the bacterial chromosome: quinolone-induced DNA cleavage. J. Mol. Biol. 258:627-637   DOI   ScienceOn
2 Cohen, E., R. J. Maxwell and D. J. Donoghue (1999) Automated multi-residue isolation of fluoroquinolone antimicrobials from fortified and incurred chicken liver using on-line microdialysis and high-performance liquid chromatography with programmable fluorescence detection. J. Chromatogr. B. 724:137-145   DOI   ScienceOn
3 Hamamoto, K. (1986) Rapid high-performance liquid chromatographic method for the determination of oxolinic acid in chicken plasma. J. Chromatogr. 381 :453-456   DOI   ScienceOn
4 Hansen, P. K., B. T. Lunestead and O. B. Samuelsen (1993) Effects of oxytetracycline, oxolinic acid, and flumequine on bacteria in an artificial marine fish farm sediment. Can. J. Microbial. 39: 1307-1312
5 Kim, M. S., S. W. Park, M. D. Huh and H. D. Jeong (1998) Effect of temperature and bacterial infection on the absorption and elimination of oxolinic acid in Nile tilapia(Oreochromis niloticus). J. Korean Fish Soc. 31(5):677-684
6 Loussouarn, S., H. Pouliquen. and F. Armand (1997) High performace liquid chromatographic determination of oxolinic acid in the plasma of seabass (Dicentrarchus labrax) anaesthetized with 2phenoxyethanol. J. Chromatogr. B. 698:251-259   DOI   ScienceOn
7 Samuelsen, O. B. (1994) High-performance liquid chromatographic determination of oxolinic acid residues in fish silage. J. Chromatogr. B. 655(2):311-314   DOI   ScienceOn
8 Tomlin, C, Ed. (1994) The pesticide manual 10th edition. pp.760, The British Crop Protection Council
9 Yang, J. E., D. S. Park and D. S. Han (1995) Comparative assessment of half-lives of benfuresate and oxolinic acid estimated from kinetic models under field soil conditions. Korean J. Environ. Agric. 14(3):302-311
10 농약공업협회 (2003) 농약사용지침서. pp.162
11 한국식품공업협회 (2000) 식품공전. pp.899-901
12 Pouliquen, H., D. Keita and L. Pinault (1992) Determination of oxytetracycline in marine shiellfish (Crassostrea gigas Ruditapes philippinarum and Scrobicularia plana) by high-performance liquid chromatography using solid phase extraction. J. Chromatogr. A. 627:287-293   DOI   ScienceOn
13 Lee, M. H., J. Y. Lim, S. K. Jung, S. W. Son and J. W. Park (1993) Determination of oxolinic acid residues in Acetes japonicus by HPLC. Kor. J. Food Hygiene. 8(3):147-150
14 Huang, T. S., W. X. Du, M. R. Marshall and C. J. Wei (1997) Determination of oxytetracycline in raw and cooked channel catfish by capillary electrophoresis. J. Agri. Food Chem. 45:2602-2605   DOI   ScienceOn
15 農藥殘留分析研究班 (1995) 最新農藥の殘留分析法. pp.461-462, 中央法規出版, 日本
16 Touraki, M., M. Ladoukakis and C. Prokopiou (2001) High-performance liquid chromatographic determination of oxolinic acid and flumequine in the live fish feed Artemia. J. Chromatogr. B. 751:247-256   DOI   ScienceOn
17 Park, H. R., K. Y. Chung, H. C. Lee, J. K. Lee and K. M. Bark (2000) Ionization and divalent cation complexation of quinolone antibiotics in aqueous solution. Bull. Korean Chem. Soc. 21(9):849-854
18 Surnitomo Co. (1991) Residue data of S-0208 in soil. Japan
19 Sorensen, L. K. and H. Hansen (2001) Determination of oxolinic acid in marine sediment by HPLC with fluorescence detection. J. Liq. Chrom. & Rel. Technol. 24(16):2469-2476   DOI   ScienceOn
20 Jeong, H. D., J. Y. Ha, M. D. Huh and J. K. Chung (1992) The absorption and excretion times of carp, Cyprinus carpio, treatment with oxolinic acid. J. Fish Pathol. 5(2): 135-142
21 Song, S. O., M. H. Cho, K. S. Shin, M. H. Lee, P. D. Ryu, B. G. Jeong, S. W. Lee and H. G. Lee (1994) Simultaneous determination of residual tetracyclines in beef, pork and chicken meats by high performance liquid chromatography. Kor. J. Vet. Publ. Hlth. 18(4):343-352
22 Mannisto, P. T. (1976) Pharmacokinetics of nalidixinic and oxolinic acid in healthy women. Clin. Pharmacol. Ther. 19(1):37-46   PUBMED
23 Barosa, J., R. Berges and V. Sanz-Nebot (1998) Retention behaviour of quinolone derivatives in high-performance liquid chromatography effect of pH and evaluation of ionization constant. J. Chromatogr. A. 823:411-422   DOI   PUBMED   ScienceOn
24 Pecorelli, J., R. Galarini, R. Bini, A. Floridi, E. Casciarri and A. Floridi (2003) Simultaneous determination of 13 quinolones from feeds using accelerated solvent extraction and liquid chromatography, Anal. Chem. Acta. 483:81-89   DOI   ScienceOn
25 Pouliquen, H., D. Gouelo, M. Larhantec, N. Pilet and L. Pinault (1997) Rapid and simple determination of oxolinic acid and oxytetracycline in the shell of the blue mussel(Mytilus edulis) by high-performance liquid chromatography. J. Chromatogr. B. 702:157-162   DOI   ScienceOn
26 Soren, T. B. (2003) Pharmaceutical antibiotic compounds in soils-a review, J. Plant Nutr. Soil Sci. 166: 145-167   DOI   ScienceOn
27 Saad, B., R. Mohamad, N. Mohamad, G. D. Lawrence, M. S. Jab and M. J. Saleh (2002) Determination of oxolinic acid in feeds and cultured fish using capillary electrophoresis. Food Chem. 78:383-388   DOI   ScienceOn
28 보건사회부 (1994) 식품공전. pp.27-28
29 Horie, M., K. Saito, Y. Hoshino and N. Nose (1987) Simultaneous determination of nalidixic acid, oxolinic acid and piromidic acid in fish by high performance liquid chromatography with fluorescence and UV detection. J. Chromatogr. A. 402:301-308   DOI   ScienceOn
30 Takatsuki, K. (1992) Gas chromatographic/mass spectrometric determination of oxolinic acid, nalidixic, and promidic acid in fish. Journal of the Association of Official Analytical Chemists International. 75:982-987
31 Fierens, C., S. Hillaert and W. Van den Bossche (2000) The qualitative and quantitave determination of quinolones of first and second generation by capillary electrophoresis. J. Pharm. Biomed. Anal. 22:763-772   DOI   ScienceOn
32 Diaz-cruz, M. S., M. J. Lopez de Alda and D. Barcelo (2003) Environmental behavior and analysis of veterinary and human drugs in soils, sediments and sludge. Trends in Anal. Chem. 22(6) :340-351   DOI   ScienceOn
33 Pouliquen, H., L. Pinault and H. Le Bris (1994) Determination of oxolinic acid in seawater, marine sediment, and japanese oyster(Crassostrea gigas) by high performance liquid chromatography. J. Liq. Chromatogr. 17 (4) :929-945   DOI   ScienceOn
34 Oka, H., Y. Ito and H. Matsumoto (2000) Chromatographic analysis of tetracycline antibiotics in foods. J. Chromatogr. A. 882:109-133   DOI   PUBMED   ScienceOn
35 농촌진흥청 . 농약공업협회 (2003) 농약등록시험담당자 교육교재. pp.173-200
36 Yorke, J. C. and P. Froc (2000) Quantitation of nine quinolones in chicken tissues by high performance liquid chromatography with fluorescence detection. J. Chromatogr. A. 882:63-77   DOI   PUBMED   ScienceOn