DOI QR코드

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Molecular survey of Toxoplasma gondii B1 gene in pigs from various localities in Korea

  • Dongmi Kwak (College of Veterinary Medicine & Institute for Veterinary Biomedical Science, Kyungpook National University) ;
  • Min-Goo Seo (College of Veterinary Medicine & Institute for Veterinary Biomedical Science, Kyungpook National University)
  • 투고 : 2024.04.14
  • 심사 : 2024.06.18
  • 발행 : 2024.08.31

초록

Toxoplasma gondii, a common protozoan parasite, poses significant public health risks due to its potential to cause toxoplasmosis in humans and can be contracted from pigs, which are considered its critical intermediate host. The aim of this study is to evaluate the prevalence of T. gondii in slaughtered pigs for human consumption, emphasizing the zoonotic implications and the need for improved biosecurity and monitoring practices in pig farming. A total of 1,526 pig samples (1,051 whole blood samples and 384 lung tissue samples from the local slaughterhouse and 91 aborted fetus samples from local farms) were collected throughout the whole country of Korea in 2020. Among them, 6 (0.4%) were found to be infected with T. gondii by nested PCR. When compared by sample type, the prevalence of T. gondii was significantly higher in the aborted fetus samples (2.2%, 2/91) than in the blood (0.3%, 3/1,051) and lung tissue samples (0.3%, 1/384). The B1 gene sequence of T. gondii was similar (97.9-99.8%) to that of the other T. gondii isolates. This study represents the first molecular genotyping survey of T. gondii in the lung tissue of fattening pigs and aborted fetuses in Korea. Our findings indicated the importance of adopting preventive measures including the implementation of rigorous farm hygiene protocols and the promotion of public awareness about the risks of consuming undercooked pork. By addressing the gaps in current control strategies and encouraging the One Health approach, this study contributes to the development of more effective strategies to mitigate the transmission of T. gondii from pigs to humans, ultimately safeguarding public health.

키워드

과제정보

We would like to thank the pig farm owners or managers who supplied pig blood and lung tissue specimens for our research.

참고문헌

  1. Hill DE, Chirukandoth S, Dubey JP. Biology and epidemiology of Toxoplasma gondii in man and animals. Anim Health Res Rev 2005;6(1):41-61. https://doi.org/10.1079/ahr2005100
  2. Djurkovic-Djakovic O, Bobic B, Nikolic A, Klun I, Dupouy-Camet J. Pork as a source of human parasitic infection. Clin Microbiol Infect 2013;19(7):586-594. https://doi.org/10.1111/1469-0691.12162
  3. Garcia-Bocanegra I, Dubey JP, Simon-Grife M, Cabezon O, Casal J, et al. Seroprevalence and risk factors associated with Toxoplasma gondii infection in pig farms from Catalonia, north-eastern Spain. Res Vet Sci 2010;89(1):85-87. https://doi.org/10.1016/j.rvsc.2010.01.017
  4. EFSA. Surveillance and monitoring of Toxoplasma in humans, food and animals1Scientific Opinion of the Panel on Biological Hazards. EFSA Journal 2007;583:1-64. https://doi.org/10.2903/j.efsa.2007.583
  5. Seo MG, Jang YS, Lee EM, Park NC, Kwak D. Prevalence of antibodies to Toxoplasma gondii in cattle and pigs reared in eastern areas of Gyeongbuk province. Korean J Vet Serv 2009;32(2):131-137 (in Korean).
  6. Kim EG, Park HJ, Son BG, Jung MH, Heo JH, et al. Prevalence of Toxoplasma gondii infection from domestic pigs in Gyeongnam province. Korean J Vet Serv 2010;33(4):345-351 (in Korean).
  7. Shim HS, Choi GM, Jeon OS, Lee SJ, Woo JT, et al. Investigation of swine toxoplasmosis by latex agglutination and polymerase chain reaction(PCR). Korean J Vet Serv 2008;31(1):87-91 (in Korean).
  8. Yoo WG, Kim SM, Won EJ, Lee JY, Dai F, et al. Tissue fluid enzyme-linked immunosorbant assay for piglets experimentally infected with Toxoplasma gondii and survey on local and imported pork in Korean retail meat markets. Korean J Parasitol 2018;56(5):437-446. https://doi.org/10.3347/kjp.2018.56.5.437
  9. KSIS. Number of farms in households and animals in heads by type. Korean Statistical Information Service. 2017.
  10. Thrusfield MV, Christley R. Veterinary epidemiology. Fourth ed. Wiley. Hoboken, USA. 2018.
  11. Grigg ME, Boothroyd JC. Rapid identification of virulent type I strains of the protozoan pathogen Toxoplasma gondii by PCR-restriction fragment length polymorphism analysis at the B1 gene. J Clin Microbiol 2001;39(1):398-400. https://doi.org/10.1128/jcm.39.1.398-400.2001
  12. Kwak D, Seo MG. Genetic analysis of zoonotic gastrointestinal protozoa and microsporidia in shelter cats in South Korea. Pathogens 2020;9(11):894. https://doi.org/10.3390/pathogens9110894
  13. Jung J, Lee J, Chang YK, Ahn SK, Park SH, et al. Seroprevalence of Toxoplasma gondii assayed using rapid diagnostic tests among residents in three counties adjacent to the demilitarized zone, Korea. Korean J Parasitol 2021;59(1):9-14. https://doi.org/10.3347/kjp.2021.59.1.9
  14. Sroka J, Bilska-Zajac E, Wojcik-Fatla A, Zajac V, Dutkiewicz J, et al. Detection and molecular characteristics of Toxoplasma gondii DNA in retail raw meat products in Poland. Foodborne Pathog Dis 2019;16(3):195-204. https://doi.org/10.1089/fpd.2018.2537
  15. Jones JL, Dubey JP. Foodborne toxoplasmosis. Clin Infect Dis 2012;55(6):845-851. https://doi.org/10.1093/cid/cis508
  16. Kim JH, Kang KI, Kang WC, Sohn HJ, Jean YH, et al. Porcine abortion outbreak associated with Toxoplasma gondii in Jeju Island, Korea. J Vet Sci 2009;10(2):147-151. https://doi.org/10.4142/jvs.2009.10.2.147
  17. Basso W, Handke M, Sydler T, Borel N, Grimm F, et al. Involvement of Toxoplasma gondii in reproductive disorders in Swiss pig farms. Parasitol Int 2015;64(2):157-160. https://doi.org/10.1016/j.parint.2014.11.017
  18. Wang H, Zhang L, Ren Q, Yu F, Yang Y. Diagnosis of swine toxoplasmosis by PCR and genotyping of Toxoplasma gondii from pigs in Henan, Central China. BMC Vet Res 2017;13(1):152. https://doi.org/10.1186/s12917-017-1079-3
  19. Xu Y, Li RC, Liu GH, Cong W, Zhang XX, et al. Seroprevalence of Toxoplasma gondii infection in sows in Hunan province, China. ScientificWorldJournal 2014;2014:347908. https://doi.org/10.1155/2014/347908
  20. Sroka J, Karamon J, Wojcik-Fatla A, Piotrowska W, Dutkiewicz J, et al. Toxoplasma gondii infection in slaughtered pigs and cattle in Poland: seroprevalence, molecular detection and characterization of parasites in meat. Parasit Vectors 2020;13(1):223. https://doi.org/10.1186/s13071-020-04106-1
  21. Papatsiros VG, Athanasiou LV, Stougiou D, Papadopoulos E, Maragkakis GG, et al. Cross-sectional serosurvey and risk factors associated with the presence of Toxoplasma gondii antibodies in pigs in Greece. Vector Borne Zoonotic Dis 2016; 16(2):48-53. https://doi.org/10.1089/vbz.2015.1845
  22. Ortega-Pacheco A, Acosta-Viana KY, Guzman-Marin E, Uitzil-Alvarez B, Rodriguez-Buenfil JC, et al. Infection dynamic of Toxoplasma gondii in two fattening pig farms exposed to high and low cat density in an endemic region. Vet Parasitol 2011;175(3-4):367-371. https://doi.org/10.1016/j.vetpar.2010.10.018
  23. Howe DK, Sibley LD. Toxoplasma gondii comprises three clonal lineages: correlation of parasite genotype with human disease. J Infect Dis 1995;172(6):1561-1566. https://doi.org/10.1093/infdis/172.6.1561
  24. Su C, Shwab EK, Zhou P, Zhu XQ, Dubey JP. Moving towards an integrated approach to molecular detection and identification of Toxoplasma gondii. Parasitology 2010;137(1):1-11. https://doi.org/10.1017/s0031182009991065
  25. Maubon D, Ajzenberg D, Brenier-Pinchart MP, Darde ML, Pelloux H. What are the respective host and parasite contributions to toxoplasmosis? Trends Parasitol 2008;24(7):299-303. https://doi.org/10.1016/j.pt.2008.03.012