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Comparision study on disinfection systems for decrease in viral haemorrhagic septicemia virus (VHSV) of olive flounder (Paralichthys olivaceus)

넙치 유래 VHSV (Viral haemorrhagic septicemia virus)의 살균방법별 저감효과 연구

  • Jae-Ok Kim (Tongyeong Regional Office, National Fishery Products Quality Management Service (NFQS)) ;
  • Gwang Il Jang (Aquatic Disease Control Division, National Fishery Products Quality Management Service (NFQS)) ;
  • Young-Jae Kim (Korea Aquatic Biosecurity Technology) ;
  • Mun-Gyeong Kwon (Aquatic Disease Control Division, National Fishery Products Quality Management Service (NFQS))
  • 김재옥 (국립수산물품질관리원 통영지원) ;
  • 장광일 (국립수산물품질관리원 수산방역과) ;
  • 김영재 ((주)한국수산방역기술) ;
  • 권문경 (국립수산물품질관리원 수산방역과)
  • Received : 2023.05.14
  • Accepted : 2023.05.31
  • Published : 2023.06.30

Abstract

Viral haemorrhagic septicemia virus (VHSV) is mainly transmitted horizontally by water-borne transmission. To prevent the spread of infectious VHSV in the aquatic environment, the water treatment is needed in aquaculture system. Although several studies have investigated to reduction of VHSV titer using the water treatment system, comparing of viral titer reduction in seawater by using different types of disinfection system has not been studied yet. Here, we determined the disinfectant effect of VHSV in seawater by using 4 types (UV radiation, plasma-AOP, electrolysis, ozonation) disinfection system. Moreover, cumulative mortality and detection rate of VHSV in olive flounder (Paralichthys olivaceus) after cohabitation challenges was also investigated viral reduction by disinfection system (UV radiation or plasma-AOP) or by untreated system. VHSV copy numbers were decreased from 105.54 copies/mL to 102.17±0.53 copies/mL, 102.31±0.22 copies/mL, 102.44±0.27 copies/mL, and 103.14±0.11 copies/mL by the UV radiation, plasma-AOP, electrolysis, ozonation, respectively. In cohabitation challenge, the cumulative mortality and VHSV detection rate of olive flounder by the plasma-AOP treatment is lower than that by the UV radiation treatment and positive control. These results suggest that the plasma-AOP treatment system can be useful for efficient inactivation of VHSV.

Keywords

Acknowledgement

본 연구는 국립수산물품질관리원(수산생물 검·방역 관리 기술개발, NFQS2023001)의 지원에 의해 수행되었습니다.

References

  1. Arimoto, M., Sato, J., Marutama, K., Mimura, G., & Furusawa, I.: Effect of chemical and physical treatments on the inactivation of striped jack nervous necrosis virus(SJNNV). Aquaculture, 143:15-22, 1996.  https://doi.org/10.1016/0044-8486(96)01261-6
  2. Afonso, L.O., Richmond, Z., Alex, Eaves, R.A., Richard, J., Hawley, L.M., & Garver, K.A.: Use of Ultraviolet C (UVC) Radiation to Inactivate Infectious Hematopoietic Necrosis Virus (IHNV) and Viral Hemorrhagic Septicemia Virus (VHSV) in Fish Processing Plant Effluent. Journal of Aquaculture Research and Development, 3:1-5. 2012. 
  3. Faisal, M., Winters, AD.: Detection of Viral Hemorrhagic Septicemia Virus (VHSV) from Diporeia spp. (Pontoporeiidae, Amphipoda) in the Laurentian Great Lakes, USA. Parasites & Vectors, 4(1):2. 2011. 
  4. Faisal, M., Shavalier, M., Kim, RK., Millard, E., V, Gunn MR., Winters, AD., Schulz, CA., Eissa, A., Thomas, MV., Wolgamood, M., Whelan, GE., Winton, J.: Spread of the emerging viral hemorrhagic septicemia virus strain, genotype IVb, in Michigan, USA. Viruses, 4(5), 734-760. 2012.  https://doi.org/10.3390/v4050734
  5. Deng, X., Shi, J. and Kong, M.G.: Physical Mechanisms of Inactivation of Bacilus subtils Spores Using Cold Atmospheric Plasmas. IEEE Transactions on Plasma Science., 34:1310-1316, 206. 2006  https://doi.org/10.1109/TPS.2006.877739
  6. EPA. Options to curb the transport of viral hemorrhagic septicemia virus in inter-lake vessel ballast water; United States Environmental Protection Agency: Washington, USA. 2019. 
  7. Jeong, J. M., Jee, B. Y., Kwon, M. G., Se, J. S., Hwang, S. D., Lee, J. H., Hwang, J, Y.: Analysis of the stability of Viral hemorrhagic septicemia virus (VHSV) depending on water temperature. Journal of Fisheries and Marine Sciences Education., 31(5), 1465- 1469. 2019.  https://doi.org/10.13000/JFMSE.2019.10.31.5.1465
  8. Hershberger, P. K., J. L. Gregg, C. A. Grady, L. M. Hart, S. R. Roon, and J. R. Winton.: ctors controlling the early stages of viral hemorrhagic septicemia epizootics: low exposure levels, virus amplification and fish o fish transmission. Journal of Fish Diseases 34: 893-899. 2011.  https://doi.org/10.1111/j.1365-2761.2011.01305.x
  9. Ishiki, T., Nishizawa, T., Kobayashi, T., Nagano, T. and Miyazaki, T.: An outbreak of VHSV viral hemor rhagic septicemia virus) infection in farmed Japanese flounder Paralichthys olivaceus in Japan. Dis. Aquat. Org., 47: 87-9, 201. 2001.  https://doi.org/10.3354/dao047087
  10. Kang, B.J., Jang, Y. H., Jhon, B. K., Park, B. H., & Shin, D. H.: Effect of UV disinfection following mechanical filtration for influent seawater on decrease in disease outbreak of juvenile olive flounder (Paralichthys olivaceus). Journal of Fish Pathology, 28(3), 125-131. 2015.  https://doi.org/10.7847/JFP.2015.28.3.125
  11. Kim, M. S., and Kim, K. H.: Protection of olive flounder, Paralichthys olivaceus, against viral hemorrhagic septicemia virus (VHSV) by immunization with NV gene-knockout recombinant VHSV. Aquaculture 314: 39-43. 2011.  https://doi.org/10.1016/j.aquaculture.2011.01.050
  12. Kim, S. J., and Oh, M. J.: Potentiality to natural immunization inducement against VHS in olive flounder by live VHSV immersion vaccination at temperature controlled culture condition. Virus Research 288: 198140. 
  13. Korean Law: Aquatic organism disease control act. Act No.17036. 2021. 
  14. Lee, H. J., Yu, H. S., Oh, E. G., Shin, S. B., Park, K., & Kim, J. H.: Germicidal Effect of Electrolyzed Seawater on Live Fish and Shellfish. Korean Journal of Fisheries and Aquatic Sciences, 46(5), 534-539. 2013.  https://doi.org/10.5657/KFAS.2013.0534
  15. Liltved, H., Vogelsang, C., Modahl, I., & Dannevig, B. H.: High resistance of fish pathogenic viruses to UV irradiation and ozonated seawater. Aquaculture engineering, 34: 72-82. 2006.  https://doi.org/10.1016/j.aquaeng.2005.05.002
  16. Oye, A. K., & Rimstad, E.: Inactivation of infectious salmon anaemia virus, viral haemorrhagic septicaemia virus and infectious pancreatic necrosis virus in water using UVC irradiation. Diseases of aquatic organisms, 48(1), 1-5. 2001.  https://doi.org/10.3354/dao048001
  17. Park, S. D., Kim, Y. H., Park, J. H., & Kim, P. K.: Changes in Water Quality and Bacterial Compositions in Culture Water of an Ozonated Flounder Farm. Korean Society of Environmental Biology, 36(1): 90-97. 2018.  https://doi.org/10.11626/KJEB.2018.36.1.090
  18. Pierce, L. R., Willey, J. C., Palsule, V. V., Yeo, J., Shepherd, B. S., Crawford, E. L., & Stepien, C. A.: Accurate detection and quantification of the fish Viral Hemorrhagic Septicemia virus (VHSV) with a two-color fluorometric real-time PCR assay. PloS one, 8(8), e71851. 2013. 
  19. Skal, H., Olesen, N.J. and Melergard, S.: Viral haemorhagic septicemia virus in marine fish and its implications for fish farming-a review. J. Fish Dis., 28: 509-529, 205. 2005.  https://doi.org/10.1111/j.1365-2761.2005.00654.x
  20. Tordo, N., Benmansour, A., Calisher, C., Dietgen, R., Fang, R.-X., Jackson, A.O., Kurath, G., NadinDavis, S., Tesh, R.B. and Walker, P.J.: Family Rhabdovir idae. In Fauquet, C.M., Mayo, M.A., Manilof, J., Deselberger, U and Bal, L. A., editors. Virus taxonomy: Eighth report of the international commite on taxonomy of viruses. Elsevier/Academic Pres, London, United Kingdom. p. 623-64, 205. 2005. 
  21. WOAH. Manual of Diagnostic tests for Aquatic Animals. Viral hemorhagic septicemia virus (VHSV); World Organisation for Animal Health: Paris, France. 2019. 
  22. WOAH. Manual of Diagnostic tests for Aquatic Animals. Viral hemorhagic septicemia virus (VHSV); World Organisation for Animal Health: Paris, France. 2021. 
  23. Wolf, K.: Viral hemorhagic septicemia. In Wolf, K., editor. Fish viruses and fish viral diseases. Cornel University Pres, Ithaca, New York, USA. 217-249, 198. 1988 
  24. Schroeder, J.P., Crot, P.L., Von, Dewitz. B., Waler, U. and Hanel, R.: Potential and limitations of ozone for the removal of ammonia, nitrite, and yelow sub stances in marine recirculating aquaculture systems, Aquacultural Enginering, 45:35-41, 201. 2011.  https://doi.org/10.1016/j.aquaeng.2011.06.001
  25. Spilotopoulou, A., Rojas-Tirado, P., Chetri, R.K., Ka-en, L.F. and Andersen, H.R.: Ozonation control and efects of ozone on water quality in recirculating aquaculture systems, Water Research, 13:289-298, 2018.  https://doi.org/10.1016/j.watres.2018.01.032
  26. You, J. H., Lee, J. H., Mun, S. H., Kwon, S. R., Park, T. S., & Kwon, J. Y.: Disinfection effect of corona discharged plasma water on fish pathogens. Journal of Fish Pathology, 33(1), 63-69. 2020.