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Studies on the Functional Properties of Lactic Acid Bacteria Isolated from Home-made Yogurt and Commercial Yogurt

Home-made 요구르트와 시판 중인 요구르트에서 분리한 젖산균의 기능적 특성 조사

  • Choi, Moon-Sup (Department of Life Science and Biotechnology, Soonchunhyang University) ;
  • Yun, Hyun-Myoung (Department of Life Science and Biotechnology, Soonchunhyang University) ;
  • Oh, Kye-Heon (Department of Life Science and Biotechnology, Soonchunhyang University)
  • 최문섭 (순천향대학교 자연과학대학 생명시스템학과) ;
  • 윤현명 (순천향대학교 자연과학대학 생명시스템학과) ;
  • 오계헌 (순천향대학교 자연과학대학 생명시스템학과)
  • Received : 2014.01.20
  • Accepted : 2014.02.25
  • Published : 2014.03.31

Abstract

The objective of this work is to investigate and compare several functional properties of lactic acid bacteria (LAB), Lactobacillus casei SK-7 isolated from home-made yogurt and Lactobacillus bulgaricus YK-11 from commercial yogurt. Initially, physiological and biochemical properties of SK-7 and YK-11 were characterized. Phylogenetic analysis using 16S rRNA sequencing were performed to identify the strains, and the strain could be assigned to Lactobacillus casei and Lactobacillus bulgaricus, designated as L. casei SK-7 and L. bulgaricus YK-11. Phylogenetic tree of SK-7 and YK-11 was plotted based on 16S rRNA sequence comparisons. Production of lactic acid and organic acid, and pH changes in the cultures of SK-7 and YK-11 were monitored during 72 h. During the incubation period, several functional properties of L. casei SK-7 and L. bulgaricus YK-11 were examined. L. casei SK-7 and L. bulgaricus YK-11 cultures eliminated 93.9% and 88.2% of nitrite, respectively. Antioxidant activity of cultural supernatants of SK-7 and YK-11 were 62.6%, 54.9%, and activity of ${\beta}$-galactosidase were 14.9 units/mg and 13.1 units/mg, respectively. The antimicrobial activities were examined with 20-fold concentrated culture supernatants from the cultures of SK-7 and YK-11. The activities of SK-7 supernatants were clearly observed against all microorganisms in this work, whereas no activities were observed in YK-11 supernatants. Although it might be conducted additional functional research, functional properties of LAB isolated from home-made yogurt have been shown to be better than those of commercial yogurt in this work.

본 연구는 home-made 요구르트에서 분리한 Lactobacillus casei SK-7과 시중에서 판매되고 있는 요구르트에서 분리한 Lactobacillus bulgaricus YK-11의 기능성을 비교 분석하기 위해 실시하였다. 먼저 분리세균인 SK-7과 YK-11의 생리화학적 특성조사를 진행하였다. 이들 균주는 16S rRNA 염기서열을 이용한 계통유전학적 분석방법으로 동정하여, 각각 L. casei SK-7와 L. bulgaricus YK-11로 명명하였다. 16S rRNA 염기서열을 바탕으로 SK-7과 YK-11의 유전적 계통수를 작성하였다. 72시간 동안 SK-7과 YK-11 배양에서 lactic acid와 acetic acid의 생산, 그리고 pH 변화를 조사하였다. 배양기간 동안 L. casei SK-7과 L. bulgaricus YK-11의 몇가지 기능성을 조사하였다. L. casei SK-7과 L. bulgaricus YK-11 배양상등액은 주어진 nitrite를 각각 93.9%와 88.2% 소거하였다. SK-7 and YK-11 배양상등액의 항산화능은 각각 62.6%와 54.9%였으며, ${\beta}$-galactosidase 활성은 14.9 units/mg과 13.1 units/mg로 측정되었다. 항미생물능력은 SK-7과 YK-11 배양의 20배 배양농축액으로 조사되었으며, SK-7은 이 조사에 사용된 모든 미생물에서 명백한 것으로 관찰되었으나, YK-11에서는 관찰되지 않았다. 부가적인 기능성 연구가 이루어져야 되겠지만, 본 연구에서는 home-made 요구르트에서 분리된 젖산균의 기능성은 시판요구르트에서의 기능성과 비교하여 우수한 것으로 조사되었다.

Keywords

References

  1. Alan, F., Keenan, P., Donovan, F.O., Mayne, P., and Murphy, J. 1998. Methaemoglobinemia associated with sodium nitrite in three siblings. BMJ 24, 1138-1139.
  2. Aloglu, H.S. and Oner, Z. 2011. Determination of antioxidant activity of bioactive peptide fractions obtained from yogurt. J. Dairy Sci. 94, 5305-5314. https://doi.org/10.3168/jds.2011-4285
  3. Blois, M.S. 1958. Antioxidant determinations by the use of a stable free radical. Nature 181, 1199-1200. https://doi.org/10.1038/1811199a0
  4. Chun, J.W., Ma, C.W., and Oh, K.H. 2005. Physiological characterization of Lactobacillus sp. JK-8 isolated from shrimp aquaculture pond. Kor. J. Microbiol. 41, 18-23.
  5. Gill, H.S. 2003. Probiotics to enhance antiinfective defenses in the gastrointestinal tract. Best Pract. Res. Clin. Gastroenterol. 17, 755-773. https://doi.org/10.1016/S1521-6918(03)00074-X
  6. Ito, Y., Yodoshi, M., Tanaka, J.I., and Iwaida, M. 1979. Comparison of two methods and improvements for colorimetric determination of nitrite in cod roe. J. Food Prot. 42, 715-718. https://doi.org/10.4315/0362-028X-42.9.715
  7. Kim, D.H., Cho, H.W., Kim, D.H., and Oh, K.H. 2013. Functional characterization of Lactobacillus sakei JK-17 isolated from long-term fermented Kimchi, Muk Eun Ji. KSBB J. 28, 18-23. https://doi.org/10.7841/ksbbj.2013.28.1.18
  8. Lin, M.Y. and Yen, C.L. 1999. Reactive oxygen species and lipid peroxidation product scavenging ability of yogurt organisms. J. Dairy Sci. 82, 1629-1634. https://doi.org/10.3168/jds.S0022-0302(99)75391-9
  9. Ma, C.W., Cho, Y.S., and Oh, K.H. 2009. Removal of pathogenic bacteria and nitrogens by Lactobacillus spp. JK-8 and JK-11. Aquaculture 287, 266-270. https://doi.org/10.1016/j.aquaculture.2008.10.061
  10. Martini, M.C., Lerebours, E.C., Lin, W.J., Harlander, S.K., Berrada, N.M., Antoine, J.M., and Savaiano, D.A. 1991. Strains and species of lactic acid bacteria in fermented milks (yogurts): effect on in vivo lactose digestion. Am. J. Clin. Nutr. 54, 1041-1046. https://doi.org/10.1093/ajcn/54.6.1041
  11. Miller J.H. 1972. Experiments in molecular genetics. pp. 352-355. Cold Spring Harbor Laboratory. New York, USA.
  12. Mirvish, S.S. 1970. Kinetics of dimethylamine nitrosation in relation to nitrosamine carcinogenesis. J. Natl. Cancer Inst. 44, 633-639.
  13. Paul, M. and Somkuti, G.A. 2010. Hydrolytic breakdown of lactoferricin by lactic acid bacteria. J. Ind. Microbiol. Biotechnol. 37, 173-178. https://doi.org/10.1007/s10295-009-0660-6
  14. Pelicano, H., Carney, D., and Huang, P. 2004. ROS stress in cancer cells and therapeutic implications. Drug Resist. Updat. 7, 97-110. https://doi.org/10.1016/j.drup.2004.01.004
  15. Saarela, M., Lahteenmaki, L., Crittenden, R., Salminen, S., and Mattila-Sandholm, T. 2002. Gut bacteria and health foods-the European perspective. Inter. J. Food Microbiol. 78, 99-117. https://doi.org/10.1016/S0168-1605(02)00235-0
  16. Sallmyr, A., Fan, J., and Rassool, F.V. 2008. Genomic instability in myeloid malignancies: increased reactive oxygen species (ROS), DNA double strand breaks (DSBs) and error-prone repair. Cancer Lett. 18, 1-9.
  17. Sanders, M.E. 1999. Probiotics. Food Technol. 53, 67-77.
  18. Savaiano, D.A. and Levitt, M.D. 1987. Milk intolerance and microbe-containing dairy foods. J. Dairy Sci. 70, 397-406. https://doi.org/10.3168/jds.S0022-0302(87)80023-1
  19. Schillinger, U. and Lucke, F.K. 1989. Antibacterial activity of Lactobacillus sake isolated from meat. Appl. Environ. Microbiol. 55, 1901-1906.
  20. Song, Y.J., Park, S.H., You, J.Y., Cho, Y.S., and Oh, K.H. 2009. Antibacterial activity against food-poisoning causing bacteria and characterization of Lactobacillus plantarum YK-9 isolated from kimchi. KSBB J. 24, 273-278.
  21. Yang, E., Fan, L., Jiang, Y., Doucette, C., and Fillmore, S. 2012. Antimicrobial activity of bacteriocin-producing lactic acid bacteria isolated from cheeses and yogurts. AMB Express 2, 48-59. https://doi.org/10.1186/2191-0855-2-48
  22. Yang, Y.J. and Sheu, B.S. 2012. Probiotics containing yogurts suppress Helicobacter pylori load and modify immune response and intestinal microbiota in the Helicobacter pylori infected children. Helicobacter 17, 297-304. https://doi.org/10.1111/j.1523-5378.2012.00941.x
  23. Zhou, N., Zhang, J.X., Fan, M.T., Wang, J., Guo, G., and Wei, X.Y. 2012. Antibiotic resistance of lactic acid bacteria isolated from Chinese yogurts. J. Dairy Sci. 95, 4775-4783. https://doi.org/10.3168/jds.2011-5271

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