DOI QR코드

DOI QR Code

Analysis of Residual Oxytetracycline in Abalone, Haliotis discus hannai (Following OTC Treatment)

전복에 Oxytetracycline의 처리에 따른 잔류성 분석

  • Kim, Na-Young (National Fisheries Research and Development Institute) ;
  • Jo, Hee-Sung (National Fisheries Research and Development Institute) ;
  • Han, Ji-Do (National Fisheries Research and Development Institute) ;
  • Park, Min-Woo (National Fisheries Research and Development Institute) ;
  • Kim, Jin-Woo (National Fisheries Research and Development Institute) ;
  • Kim, Hyun-Jeong (National Fisheries Research and Development Institute) ;
  • Jee, Bo-Young (National Fisheries Research and Development Institute) ;
  • Won, Kyoung-Mi (National Fisheries Research and Development Institute)
  • Received : 2014.07.14
  • Accepted : 2014.11.26
  • Published : 2015.02.28

Abstract

Oxytetracycline (OTC) has been widely used in aquaculture field as a therapeutic and prophylactic agent because of its broad-spectrum activity against gram-positive and negative bacteria. Residual oxytetracycline (OTC) was studied after spray treatment of cultured abalone, Haliotis discus hannai. Muscle concentration of OTC was determined after spray treatment ( 4,000, 7,000, 10,000 ppm) in the abalone. Muscle samples were taken at 0, 1, 3, 7, 14, 21 30, 60, 90, 120, 150, 180, 210, 240, 270, 300, 330 and 360 day post-dose. OTC analyses were carried out by high performance liquid chromatography (HPLC). In 4000, 7000 and 1000 ppm treatment for small size abalones, OTC levels at 1 day post-dose, have been dramatically decreased by 8.34, 3.35 and 4.47 ug/g, respectively. For medium size abalones, concentration were measured as 7.58, 15.62 and 7.8 ug/g, respectively. Those of large size abalones also were observed as 11.31, 12.38 and 15.28 ug/g, respectively, at 1 day post-dose. No significant differences in residual OTC depletion in muscles were observed between the size of abalones. More than 0.2 mg/kg of OTC was detected in muscle tissues and the residues were found over 60 days after treatment. It is expected that these results would contribute to improve recommended withdrawl periods of OTC for a safer seafood supply.

Keywords

References

  1. Campbell, D. A.Pantazis, P. and Kelly, M. S.(2001). Impact and residence time of oxytetracycline in the sea urchin, a potential aquaculture species, Aquaculture 202, 73-87. https://doi.org/10.1016/S0044-8486(01)00600-7
  2. Chen, C. Y. Getchell, R. G. Wooster, G. A. Craigmill, A. L. and Bowser, P. R.(2004). Oxytetracycline residues in four species of fish after 10-day oral dosing in feed. Journal of Aquatic Animal Health 16, 208-219. https://doi.org/10.1577/H04-071.1
  3. Coyne, R. Hiney, M. and Smith, P.(1997). Transient presence of oxytetracycline in blue mussels Mytilus edulis following its therapeutic use at a marine Atlantic salmon farm, Aquaculture 149, 175-181. https://doi.org/10.1016/S0044-8486(96)01446-9
  4. Friedman, C. S. Trevelyan, G. Robbins, T. T. Mulder, E. P. and Fields, R.(2003). Development of an oral administration of oxytetracycline to control losses due to withering syndrome in cultured red abalone Haliotis rufescens, Aquaculture 224,1-23. https://doi.org/10.1016/S0044-8486(03)00165-0
  5. Han, S. H. Kim, B. R. Won, S. H. and Kim, J. W.(2003). Effect of urea on the exfoliation of juvenile abalone, Haliotis discus Reeve, Journal of Aquaculture 16(4), 223-228.
  6. Handlinger, J. Harris, J. Carson, J. and Taylor D.(2006). Abalone aquaculture subprogram: The potential for antibiotic use in abalone for disease control. Final Report January FRDC Project No. 2000/205.
  7. Jobling, M.,(1994). Fish Bioenergetics. Chapman & Hall, London.
  8. Jung, S. H. Choi, D. L. Kim, J. W. Jo, M. R. Seo, J. S. and Jee, B. Y.(2008). Pharmacokinetics of oxytetracycline in olive flounder (Paralichthys olivaceus) by intramuscular injection, Journal of Fish Pathology 21(2), 107-117.
  9. Kim, W. S. Lee, S. W. Kim, J. Choi, D. I. Oh, M. J. and Hwang, D. J.(2013). Exfoliation of abalone, Haliotis discus hannai using organic acid. Journal of Fish Pathology, 26(1), 51-56. https://doi.org/10.7847/jfp.2012.26.1.051
  10. No, S. (1988). Studies on the seed production of the abalone, Haliotis discus hannai Ino, Pukyung National university. 87-101.
  11. Pouliquen, H. Keita, D. and Pinault, L.(1992). Determination of oxytetracycline in marine shellfish (Crassostrea gigas, Ruditapes philippinarum and Scrobicularia plana) by high-performance liquid chromatographyusing solid-phase extract, Journal of Chromatography 627(1-2),287-293. https://doi.org/10.1016/0021-9673(92)87209-Q
  12. Rigos, G. Alexis, M. Andriopoulou, A. and Nengas, I.(2002). Pharmacokinetics and tissue distribution of oxytetracycline in sea bass, Dicentrarchus labrax, at two water temperatures, Aquaculture 210, 59-67. https://doi.org/10.1016/S0044-8486(01)00868-7
  13. Rosenblum, E. S.(2006). Pharmacokinetics and efficacy of oxytetracycline in WS-RLP-infected abalone, University of California, Davis, California, 127.
  14. Shin, Y. T. Jang, H. S. and Kim, B. T.(2008). Production control and distribution reform as a way to develop the abalone aquaculture industry, Korea Maritime Institute 12, 1-137.
  15. Treves-Brown, K. M.(2000). Tetracyclines. In Applied Fish Pharmacology, pp. 64-82. Kluwer Academic Publishers, Dordrecht, Netherlands.
  16. Wang, Q. Liu, Q., and Li, J.(2004). Tissue distribution and elimination of oxytetracycline in perch (Lateolabras janopicus) and black seabream (Sparus macrocephalus) following oral administration, Aquaculture 237, 31-40. https://doi.org/10.1016/j.aquaculture.2004.03.016
  17. White, H. I., Hecht, T. and Potgieter, B. (1996). The effect of four anaesthetics on Haliotis midue and their suitability for application in commercial abalone culture. Aquaculture 140, 145-151. https://doi.org/10.1016/0044-8486(95)01185-4