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Stability Traits of Probiotics Isolated from Korean on Spices and Propolis

향신료와 프로폴리스에 대한 한국형 유산균의 안정성

  • Received : 2014.07.08
  • Accepted : 2014.08.01
  • Published : 2014.09.30

Abstract

their survival rates could be affected by various factors such as diet, stress, senescence, and antibiotics. This study was performed to evaluate the influence of various spices (garlic, ginger, scallion, onion, Chungyang red pepper, and red pepper) which have antimicrobial properties and used frequently in Korean diet, and propolis on probiotics isolated from Koreans. As a result, most Korean probiotic strains were resistant to all spices tested and propolis, and the growth rates of some Korean probiotic strains (Bifidobacterium lactis, Lactobacillus acidophilus, Lactobacillus casei, Lactobacillus rhamnosus, Streptococcus thermophiles) were even increased by specific spices or propolis. But on the other hand, the growth rates of most of european probiotic strains were reduced by various spices or propolis, and the growth rates of a few european probiotic strains (L. helveticus, S. thermophiles) were greatly decreased in the presence of specific spices. Likewise, all commercial probiotic products including Korean probiotic strains were rarely affected by spices tested. However, european probiotic product tended to be greatly reduced by garlic, onion, scallion, and propolis. Therefore, these results indicate that probiotic strains isolated from Korean have the strong viability and resistance to various spices with antimicrobial properties, so that they might be appropriate for Korean intestine.

건강에 유익한 작용을 하는 프로바이오틱스는 까다로운 미생물로 다양한 환경조건에 매우 민감하여, 이들의 생존율은 항생제, 노화, 스트레스와 식이 등과 같은 요인들에 크게 영향을 받는다. 이에 본 연구에서는 한국 식단에서 많이 이용되고 있는 항균활성이 있는 각종 향신료(마늘, 생강, 파, 양파, 청양고추, 홍고추)와 프로폴리스가 한국인의 장에서 분리한 유산균주의 생존율에 미치는 영향을 조사하였다. 그 결과 대부분의 한국형 유산균주들은 모든 향신료와 프로폴리스에 저항성을 나타냈으며, 심지어 일부 한국형 유산균주(Bifidobacterium lactis, Lactobacillus acidophilus, Lactobacillus casei, Lactobacillus rhamnosus, Streptococcus thermophiles)는 특정 향신료 또는 프로폴리스에 의해 증식률이 증가하였다. 하지만 이와 다르게 대부분의 외래종 유산균주는 다양한 향신료와 프로폴리스에 의해 증식률이 감소 하였으며, 일부 외래종 유산균주(L. helveticus, S. thermophiles)는 특정 향신료에 의해 증식률이 크게 감소 하였다. 마찬가지로 각 향신료와 프로폴리스가 한국형 유산균주만 사용하여 제조된 프로바이오틱스 제품과 외래종 유산균주가 사용된 해외 프로바이오틱스 제품에 미치는 영향을 조사한 결과 한국형 프로바이오틱스 제품은 모두 큰 영향을 받지 않았다. 하지만 해외 프로바이오틱스 제품은 마늘, 양파, 파, 프로폴리스에 의해 크게 감소하는 경향을 나타냈다. 따라서 본 연구결과, 한국인의 장에서 분리한 유산균은 대체적으로 항균활성이 있는 각종 향신료에 저항성을 가지는 생존력이 강한 균주로 판단되며, 한국인의 장에 적합한 유산균으로 사료된다.

Keywords

References

  1. Bankova, V., Christov, R., Popov, S., Marucci, M.C., Tsvetkova, I., and Kujumgiev, A. 1999. Antibacterial activity of essential oils from Brazilian propolis. Fitoterapis 70, 190-193. https://doi.org/10.1016/S0367-326X(98)00045-8
  2. Beuchat, L.R. and Golden, D.A. 1989. Antimicrobials occurring naturally in foods. Food Technol. 43, 134-142.
  3. Bode, A.M., Ma, W.Y., Surh, Y.J., and Dong, Z. 2001. Inhibition of epidermal growth factor-induced cell transformation and activator protein 1 activation by [6]-gingerol. Cancer Res. 61, 850-853.
  4. Chang, M.S., Kim, J.G., and Kim, G.H. 2010. Survey on consumer's perception of fresh-cut root vegetables. Kor. J. Food Cookery Sci. 26, 649-654.
  5. Cheng, P.C. and Wong, G. 1996. Honey bee propolis: prospects in medicine. Bee World 77, 8-15. https://doi.org/10.1080/0005772X.1996.11099278
  6. Chipault, J.R., Mizuno, G.R., and Lundberg, W.O. 1956. The antioxidant properties of spices in food. Food Technol. 10, 209-211.
  7. Choi, S.H., Suh, B.S., Kozukue, E., Kozukue, N., Levin, C.E., and Friedman, M. 2006. Analysis of the contents of pungent compounds in fresh Korean red peppers and in pepper-containing foods. J. Agric. Food Chem. 54, 9024-9031. https://doi.org/10.1021/jf061157z
  8. Chung, K.S., Kang, S.Y., and Kim, J.Y. 2003a. The antibacterial activity of garlic juice against pathogenic bacteria and lactic acid bacteria. Kor. J. Microbiol. Biotechnol. 31, 32-35.
  9. Chung, K.S., Kim, J.Y., and Kim, Y. 2003b. Comparison of antibacterial activities of garlic juice and heat-treated garlic juice. Kor. J. Food Sci. Technol. 35, 540-543.
  10. Dima, C., Coman, G., Cotarlet, M., Alexe, P., and Dima, S. 2013. Antitoxidant and antibacterial properties of capsaicine microemulsions. AUDJG-Food Technol. 37, 39-49.
  11. Farooqui, T. and Farooqui, A.A. 2010. Molecular mechanism underlying the therapeutic activities of propolis: a critical review. Curr. Nutr. Food Sci. 6, 1-15. https://doi.org/10.2174/157340110790909590
  12. Food and Agriculture Organization of the United Nations, and World Health Organization (FAO/WHO). 2001. Report of the joint FAO/WHO expert consultation on evaluation of health and nutritional properties of probiotics in food including powder milk with live lactic acid bacteria, pp. 1-34. Cordoba, Argentina.
  13. Fuller, R. 1992. Probiotics: the scientific basis. London: Chapman & Hall, UK.
  14. Gueimonde, M. and Sanchez, B. 2012. Enhancing probiotic stability in industrial processes. Microb. Ecol. Health Dis. 23, doi: 10.3402/mehd.v23i0.18562.
  15. Hughes, D.B. and Hoover, D.G. 1991. Bifidobacteria : Their potential for use in America, dairy products. Food Tech. 45, 74-80.
  16. Jonkers, D., Sluimer, J., and Stobberingh, E. 1999. Effect of garlic on vancomycin-resistant enterococci. Antimicrob. Agents. Chemother. 43, 3045.
  17. Jung, K. and Park, C.S. 2013. Antioxidative and antimicrobial activities of juice from garlic, ginger, and onion. Kor. J. Food Preserv. 20, 134-139. https://doi.org/10.11002/kjfp.2013.20.1.134
  18. Kim, M.L., Choi, K.H., and Park, C.S. 2000. Antibacterial activity of powdered spice against Escherichia coli and Staphylococcus aureus. Kor. J. Postharvest Sci. Technol. 7, 124-131.
  19. Kim, O.M., Kim, M.K., Lee, K.R., and Kim, S.D. 1998. Selective antimicrobial effects of spice extracts against Lactobacillus plantarum and Leuconostoc mesenteroides isolated from Kimchi. Kor. J. Appl. Microbiol. Biotechnol. 26, 373-378.
  20. Kumar, M. and Berwal, J.S. 1998. Sensitivity of food pathogens to garlic (Allium sativum). J. Appl. Microbiol. 84, 213-215. https://doi.org/10.1046/j.1365-2672.1998.00327.x
  21. Lakhanpal, P. and Rai, D.K. 2007. Quercetin: a versatile flavonoid. Int. J. Med. Update. 2, 22-37.
  22. Lee, J.H. and Kim, M.R. 2008. Changes in the functional properties of spices and herbs during cooking. Kor. J. Food Cookery Sci. 24, 132-156.
  23. Lee, B.S., Ko, M.S., Kim, H.J., Kwak, I.S., Kim, D.H., and Chung, B.W. 2006. Separation of 6-gingerol from ginger [Zingiber officinale Roscoe] and antioxidative activity. Kor. J. Biotechnol. Bioeng. 21, 484-488.
  24. Lee, M.H., Lee, K.H., Kim, K.T., and Kim, S.S. 2012. Antimicrobial activity of ginger (Zingiber officinale Roscoe) oleoresin by supercritical fluid extraction. J. Fd. Hyg. Safety 27, 109-116. https://doi.org/10.13103/JFHS.2012.27.2.109
  25. Lee, W.W., Son, S.K., Lee, G.R., Kim, G.H., and Kim, Y.H. 2011. Antimicrobial effects of garlic extract against pathogenic bacteria. Kor. J. Vet. Serv. 34, 167-178. https://doi.org/10.7853/kjvs.2011.34.2.167
  26. Marteau, P., Minekus, M., Havenaar, R., and Huis In't Veld, J.H.J. 1997. Survival of lactic acid bacteria in a dynamic model of the stomach and small intestine: validation and the effects of bile. J. Dairy Sci. 80, 1031-1037. https://doi.org/10.3168/jds.S0022-0302(97)76027-2
  27. Miean, K.H. and Mohamed, S. 2001. Flavonoid (myricetin, quercetin, kaempferol, luteolin, and apigenin) content of edible tropical plants. J. Agric. Food Chem. 49, 3106-3112. https://doi.org/10.1021/jf000892m
  28. Park, H.K., Kim, S.B., and Shim, C.H. 2008. Antimicrobial activity of water soluble propolis. Kor. J. Food Nutr. 21, 15-21.
  29. Park, C.J. and Park, C.S. 2007. The antibacterial and antioxidative activity of licorice and spice water extracts. Kor. J. Food Cookery Sci. 23, 793-799.
  30. Ra, K.S., Suh, H.J., Chung, S.H., and Son, J.Y. 1997. Antioxidant activity of solvent extract from onion skin. Kor. J. Food Sci. Technol. 29, 595-600.
  31. Ramos, F.A., Takaishi, Y., Shirotori, M., Kawaguchi, Y., Tsuchiya, K., Shibata, H., Higuti, T., Tadokoro, T., and Takeuchi, M. 2006. Antibacterial and antioxidant antivities of quercetin oxidation products from yellow onion (Allium cepa) skin. J. Agric. Food Chem. 54, 3551-3557. https://doi.org/10.1021/jf060251c
  32. Sahadeva, R.P.K., Leong, S.F., Chua, K.H., Tan, C.G., Chan, H.Y., Tong, E.V., Wong, S.Y.W., and Chan, H.K. 2011. Survival of commercial probiotic strains to pH and bile. Int. Food Res. J. 18, 1515-1522.
  33. Sheo, H.J. 1999. The antibacterial action of garlic, onion, ginger and red pepper juice. J. Kor. Soc. Food Sci. Nutr. 28, 94-99.
  34. Son, Y.R. 2003. Studies on the antimicrobial effect of extracts of propolis. J. Fd. Hyg. Safety 18, 189-194.
  35. Walker, W.A. and Duffy, L.C. 1998. Diet and bacterial colonization: role of probiotics and prebiotics. J. Nutr. Biochem. 9, 668-675. https://doi.org/10.1016/S0955-2863(98)00058-8
  36. Wendorf, W.L. and Wee, C. 1997. Effect of smoke and spice oils on growth of molds on oil-coated cheese. J. Food Prot. 60, 153-156. https://doi.org/10.4315/0362-028X-60.2.153
  37. Yoon, I.S. 2009. Sensitivity test on the food poisoning bacteria of the garlic extract. J. Kor. Contents Assoc. 9, 339-349. https://doi.org/10.5392/JKCA.2009.9.2.339
  38. Ziauddin, K.S., Rao, H.S., and Fairoze, N. 1996. Effect of organic acids and spices on quality and self-life of meats at ambient temperature. J. Food Sci. Technol. 33, 255-258.

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