DOI QR코드

DOI QR Code

유기농 시설엽채류의 유해미생물 오염평가

Analysis of Pathogenic Microorganism's Contamination on Organic Leafy Vegetables at Greenhouse in Korea

  • 오소영 (국립한경대학교 국제농업기술정보연구소) ;
  • 남기웅 (국립한경대학교 원예생명과학과) ;
  • 윤덕훈 (국립한경대학교 국제농업기술정보연구소)
  • Oh, Soh-Young (Research Institute of International Agriculture, Technology and Information, Hankyong National University) ;
  • Nam, Ki-Woong (Department of Horticultural Life Science, Hankyong National University) ;
  • Yoon, Deok-Hoon (Research Institute of International Agriculture, Technology and Information, Hankyong National University)
  • 투고 : 2017.09.15
  • 심사 : 2017.12.21
  • 발행 : 2018.02.28

초록

본 연구는 시설엽채류에서 재배농법별 미생물학적 안전성을 평가하기 위해서 깻잎과 상추를 대상으로 수행하였다. 유기농 및 관행 농가로부터 생산 및 수확 단계에서 식물체, 수확장갑, 수확비구니, 토양피복재 등으로부터 총 2,304개의 시료를 채취하여 Total aerobic bacteria, Coliforms, E.coli, Environmental Listeria, Yeast & mold 등의 위생지표세균과 Staphylococcus aureus, Bacillus cereus, Salmonella spp., Clostridium spp., L. monocytogenes등의 병원성미생물을 분석하였다. 시설엽채류의 생산과정에서는 재배농법에 상관없이 위행지표세균은 검출되지 않거나 $3.4\;Log\;CFU/100cm^2$ 이하로 검출되었다. 유기농법으로 생산되는 깻잎과 상추에서 B. cereus와 S. aureus가 0.22~1.55 Log CFU/g로 조사되었고, 관행농법에서는 S. aureus는 검출되지 않았으며 B. cereus는 0.42~2.19 Log CFU/g으로 조사되었으나 통계적 유의차는 없었다. 수확도구 및 멀칭필름에서도 재배농법과는 관계없이 위생지표세균과 유해균의 오염도는 낮았으며 차이는 없었다. 그러나 수확도구에서의 미생물 오염도가 높아질수록 식물체 표면의 미생물 오염도도 높아지는 정의 상관관계($R^2=0.4526$)가 있었다. 또한 유기농 시설엽채류 생산시 토양 피복시 위생지표세균과 병원성미생물이 검출되지 않거나 피복을 하지 않은 경우에 비하여 낮은 경향을 나타내었다. 본 연구결과, 시설엽채류 생산시 재배농법의 차이보다는 토양피복 및 수확과정의 미생물적 위생관리가 더욱 필요함을 알 수 있었다.

This study was conducted to evaluate the microbiological safety of leafy vegetables (perilla leaf and lettuce) in relation to cultivation methods. A total of 2,304 samples were collected from plants, harvesting tools and soil mulching film during the production and harvest stages from organic- and conventional- farms. From the samples, sanitary indicator microorganisms (total aerobic bacteria, coliforms, E. coli., Environmental Listeria, and yeast and mold) and pathogenic microorganisms (S. aureus, B. cereus, Salmonella spp., Clostridium spp., and L. monocytogenes) were analyzed. In the production stage of leafy vegetables, the sanitary indicator microorganisms was not detected regardless of cultivation method or it was detected to be less than $3.4\;Log\;CFU/100cm^2$. B. cereus and S. aureus were found to be 0.22~1.55 Log CFU/g in perilla leaf and lettuce produced by organic farms, and S. aureus was not detected and B. cereus was found to be 0.42~2.19 Log CFU/g in conventional farms. There were no significant differences between two cultivation methods. In the harvesting tools and soil mulching film, the contamination levels of sanitary indicator microorganisms and pathogenic microorganisms was low regardless of the cultivation method. However, there was a positive correlation ($R^2=0.4526$) in that the higher the microbial contamination level in the harvesting tool, the higher the microbial contamination on the surface of the plant. In addition, sanitary indicator microorganisms and pathogenic microorganisms were not detected or low in soil mulching during the production of organic leafy vegetables. As a result of this study, microbial hygiene control by soil mulching and harvesting tools was more important than difference of cultivation method in production of leafy vegetables.

키워드

참고문헌

  1. Beuchat L.R.: Ecological factors influencing survival and growth of human pathogens on raw fruits and vegetables. Microbes and Infection, 4, 413-423 (2002).
  2. Bari M.L., Nei D., Enomoto K., Todoriki S., Kawamoto S.: Combination treatments for killing Escherichia coli 0157:H7 on alfalfa, radish, brocooli, and mung bean seeds. J. Food Prot., 72, 631-636 (2009). https://doi.org/10.4315/0362-028X-72.3.631
  3. Samara A., Koutsoumanis K.P.: Effect of treating lettuce surfaces with acidulants on the behavior of Listeria monocytogenes during storage at 5 and $20^{\circ}C$ and subsequent exposure to simulated gastric fluid. Int. J. Food Microbiol., 129, 1-7 (2009). https://doi.org/10.1016/j.ijfoodmicro.2008.10.023
  4. Erenstein, O.: Crop residue mulching in tropical and semitropical countries: an evaluation of residue availability and other technological implications. Soil Till. Res., 67, 115-133 (2002). https://doi.org/10.1016/S0167-1987(02)00062-4
  5. Lai, R.: Tillage and agricultural sustainability. Soil Till. Res., 20, 133-146 (1991). https://doi.org/10.1016/0167-1987(91)90036-W
  6. Lee, Y.H.: Evaluation of no-tillage rice cover crop cropping systems for organic farming. Korean J. Soil Sci. Fert., 43, 200-208 (2010).
  7. Lammerding A.M.: An overview of microbial food safety risk assessment. J. Food Protect., 60, 1420-1425 (1997).
  8. Stephenson J.: New approaches for detecting and curtailing food borne microbial infections. J. Am. Med. Assoc., 277, 1337-1339 (1997). https://doi.org/10.1001/jama.1997.03540410015004
  9. Centers for Disease Control and Prevention. The United States annual listing of foodborne disease outbreaks. Available from: http://www.cdc.gov/foodborneoutbreaks/outbreakdata.htm. Accessed Aug. 1 (2008).
  10. Lomonaco S., Verghese B., Gerner-Smidt P., Tarr C., Gladney L., Joseph L., Katz. L, Turnsek M., Frace M., Chen Y., Brown E., Meinersmann R., Berrang M., Knabel S.: Novel epidemic clones of Listeria monocytogenes, United States. Emerg. Infect. Dis., 19, 147-150 (2013). https://doi.org/10.3201/eid1901.121167
  11. FDA. Fresh strawberries from washington county farm implicated in E. coli O157 outbreak in NW Oregon. Available from: http://www.fda.gov/Safety/Recalls/ucm267667.htm. Accessed Aug. 16 (2011).
  12. Heaton J.C., Jones K.: Microbial contamination of fruit and vegetables and the behaviour of enteropathogens in the phyllosphere: A review. J. Appl. Microbiol., 104, 613-626 (2008). https://doi.org/10.1111/j.1365-2672.2007.03587.x
  13. Frank C., Werber D., Cramer J.P., Askar M., Faber M., Heiden M., Bernard H., Fruth A., Prager R., Spode A., Wadl M., Zoufaly A., Jordan S., Kemper M.J., Follin P., Muller L., King L.A., Rosner B., Buchholz U., Stark K., Krause G.: Epidemic profile of shiga-toxinproducing Escherichia coli O104: H4 outbreak in Germany. New Engl. J. Med., 365, 1771-1780 (2011). https://doi.org/10.1056/NEJMoa1106483
  14. KFDA Food Code 10-3-1-43. Korea Food and Drug Administration. Seoul, Korea (2009).
  15. Kim J.S., Bang O.K., Chang H.C.: Examination of microbiological contamination of ready-to-eat vegetable salad. J. Food Hyg. Saf., 19, 60-65 (2004).
  16. Won Y.J., Yoon C.Y., Seo I.W., Nam H.S., Lee D.M., Park D.H., Lee H.M., Kim S.S., Lee K.Y.: The study for the occurrence of food poisoning bacteria in organic vegetables. Annu. Rep. KFDA, Seoul, Korea, 6, 521 (2002).
  17. Cho, Y.S., Lee, J.Y., Lee, M.K., Shin, D.B., Park, K.M.: Prevalence and Characterization of Staphylococcus aureus Pathogenic Factors Isolated from Various Foods in Korea. Korea J. Food Sci. Technol., 43, 648-654 (2011). https://doi.org/10.9721/KJFST.2011.43.5.648
  18. Chen, T.R., Hsiao, M.H., Chiou, C.S., Tsen, H.Y.: Development and use of PCR primers for the investigation of C1, C2 and C3 enterotoxin types of Staphylococcus aureus strains isolated from food-borne outbreaks. Int. J. Food Microbiol., 71, 63-70 (2001). https://doi.org/10.1016/S0168-1605(01)00564-5
  19. Lee E.J.: The effect of temperature and time on the multiplication of Staphylococcus in foods. Korean Journal of Public Health., 9, 381-387 (1972).
  20. Kim, S.R., Lee, J.Y., Lee, S.H., Ryu, K.Y., Park, K.H., Kim, B.S., Yoon, Y.H., Shim, W.B., Kim, K.Y., Ha, S.D., Yun, J.C., Chung, D.H. : Profiles of toxin genes and antibiotic susceptibility of Bacillus cereus isolated from perilla leaf and cultivation areas. Korea J. Food Sci. Technol., 43, 134-141 (2011). https://doi.org/10.9721/KJFST.2011.43.2.134
  21. Chun SB, Bacillus cereus. p. 326. In: Food-born Pathogens. Jinsung Unitec, Seoul, Korea (2007).
  22. FDA. Guidance for industry:guide to minimize microbial food safety hazards of leafy greens; Draft Guidance. Available from: http://www.fda.gov. Accessed 2009.
  23. FDA. FSMA Final Rule on Produce Safety. Available from: http://www.fda.gov. Accessed 2011.
  24. Shim, W.B., Nam, M.W., Chung, D.H.: Understanding and activation of GAP system. Safe Food, 9, 3-8 (2014).
  25. EFSA. Opinion of the scientific panel on biological hazards on Bacillus cereus and other Bacillus spp. In foodstuffs. EFSA J., 175, 1-48 (2005).
  26. Kim, S.R., Cha, M. H., Chung, D.H., Shim, W. B.: Profiles of toxin genes and antibiotic susceptibility of Staphylococcus aureus isolated from perilla leaf cultivation area. J. Food Hyg. Saf., 30, 51-58 (2015). https://doi.org/10.13103/JFHS.2015.30.1.51
  27. World Health Organization (WHO). "WHO guidelines for assessing quality of herbal medicines with reference to contaminants and residue". Geneva, (2007).
  28. Beuchat L.R., Harris L.R., Linda J., Ward T.E., Kajs T.M.: Development of a proposed standard method for assessing the efficacy of fresh produce sanitizer. J. Food Protect., 64, 1103-1109 (2001). https://doi.org/10.4315/0362-028X-64.8.1103
  29. Jung, H.J., Cho, J.I., Park, S.H., Ha, S.D., Lee, K.H., Kim, C.H., Song, H.S., Chung, D.H., Kim, M.G., Kim, K.Y., Kim, K.S.: Genotypic and phenotypic characteristics of Staphylococcus aureus isolates from lettuces and raw milk. Korean J. Food Sci. Technol., 37, 134-141 (2005).
  30. Kang T.M., Cho S.K., Park J.Y., Song K.B., Chung M.S., Park J.H.: Analysis of microbial contamination of sprouts and fresh cut salads in a market. Korean J. Food Sci. Technol., 43, 490-494 (2011). https://doi.org/10.9721/KJFST.2011.43.4.490
  31. Mukherjee A., Dorinda S., Jones A., Buesing K., Francisco D.G.: Longitudinal microbiological survey of fresh produce grown by farmers in the upper midwest. Journal of food protection, 69, 1928-1936, (2006). https://doi.org/10.4315/0362-028X-69.8.1928
  32. Oh S.Y., Nam K.W., Kim W.I., Lee M.H., Yoon D.H.: Analysis of pathogenic microorganism's contamination on cultivation environment of strawberry and tomato in Korea. Korean J. Soil Sci. Fert., 47, 510-517 (2014). https://doi.org/10.7745/KJSSF.2014.47.6.510
  33. Shim, W.B., Kim, J.S., Chung, D.H.: Microbiologica hazard analysis of Ginseng Farns at the cultivation stage to develop a good agricultural practices (GAP) model, J. Food Hyg. Saf., 28, 312-318 (2013). https://doi.org/10.13103/JFHS.2013.28.4.312
  34. Lee, E.S, Kwak M.G, Kim W.L, An H.M, Lee H.S, Ryu S.H, Kim H.Y, Ryu J.G., Kim S.R.: Investigation of microbial contamination level during production of baby leafy vegetables. J. Food Hyg. Saf., 31, 264-271 (2016). https://doi.org/10.13103/JFHS.2016.31.4.264
  35. Smith, D.: Ranking of cross-contamination vectors of readyto-eat foods: a practical approach. Guideline 54. Campden BRI, Chipping Campden, UK. (2007).
  36. FDA. Guidance for industry, Guide to minimize microbial food safety hazard for fresh fruits and vegetables. Available From: http://csan.fda.gov. Accessed Oct. 26, (2005).
  37. Brackett, R.E. and Splittsoesser, D.F.: Compendium of methods for the microbiological examination of foods. 4th ed. American Public Health Association, Washington, D.C. 515-552 (2001).