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Edible Culture Media from Cereals and Soybeans for Pre-cultivation of Lactic Acid Bacteria

곡류 및 두류를 이용한 젖산균 전배양용 식용 배지의 제조

  • Park, So-Lim (Fermentation and Functionality Research Group, Korea Food Research Institute) ;
  • Park, Sunhyun (Fermentation and Functionality Research Group, Korea Food Research Institute) ;
  • Jang, Jieun (Fermentation and Functionality Research Group, Korea Food Research Institute) ;
  • Yang, Hye-Jung (Fermentation and Functionality Research Group, Korea Food Research Institute) ;
  • Moon, Sung-Won (Dept. of Hotel & Foodservice Culinary Arts, Youngdong University) ;
  • Lee, Myung-Ki (Fermentation and Functionality Research Group, Korea Food Research Institute)
  • 박소림 (한국식품연구원 발효기능연구단) ;
  • 박선현 (한국식품연구원 발효기능연구단) ;
  • 장지은 (한국식품연구원 발효기능연구단) ;
  • 양혜정 (한국식품연구원 발효기능연구단) ;
  • 문성원 (영동대학교 호텔외식조리학과) ;
  • 이명기 (한국식품연구원 발효기능연구단)
  • Received : 2013.02.26
  • Accepted : 2013.04.01
  • Published : 2013.06.30

Abstract

This study was conducted to develop an edible culture media with various types of cereals and soybeans for the pre-cultivation of lactic acid bacteria (LAB). To manufacture the edible culture media, LAB enrichment media were prepared using cereals such as brown rice (including germinated brown rice, glutinous brown rice, and germinated glutinous brown rice), yellow soybeans (including yellow soybeans, hulled yellow soybeans, germinated yellow soybeans, hulled and germinated yellow soybeans), and black soybeans (black soybeans, hulled black soybeans, germinated black soybeans, hulled and germinated black soybeans). Seven species of LAB were used in the experiment: Lactobacillus (Lb.) farciminis, Lb. homohiochii, Lb. pentosus, Lb. plantarum, Leuconostoc (Leu.) paramesenteroides, Leu. citreum, and Leu. lactis. For edible culture media from cereals, the average viable cell count of the seven starter cultures was 7.6~8.0 log CFU/mL, while that of the MRS culture medium, a synthetic medium, was 9.2 log CFU/mL; thus proliferation was lower by about 1~2 log CFU/mL in starter cultures from cereals compared to the synthetic medium. In the case of the edible culture media from soybeans, most bacteria showed higher proliferation in the hulled and germinated soybean media. In particular, Lb. plantarum showed the highest cell count at 10.08 log CFU/mL. In the case of edible culture media from black soybeans, the proliferation rate was higher in the hulled and germinated black soybean medium. Lb. homohiochii showed the highest proliferation in the hulled and germinated black soybean medium at 9.90 log CFU/mL. All results show that edible culture media using cereals and soybeans are generally good for LAB. Especially, hulled and germinated black soybeans are optimal for the pre-cultivation of LAB medium.

본 연구는 곡류 및 두류를 이용하여 식용 가능한 젖산균 모배양용 식용배지를 개발하고자 실시하였다. 식용 배지의 제조를 위하여 곡류는 발아현미, 찰현미, 발아찰현미를 사용하였고, 두류는 대두콩(대두콩, 껍질을 제거한 대두콩, 발아 대두콩, 껍질을 제거한 발아 대두콩)과 검은 대두콩(검은 대두콩, 껍질을 제거한 검은 대두콩, 발아 검은 대두콩, 껍질을 제거한 발아 검은 대두콩)으로 나누어서 젖산균 증식배지를 제조하였다. 실험에 사용된 젖산균은 Lactobacillus(Lb.) farciminis, Lb. homohiochii, Lb. pentosus, Lb. plantarum, Leuconostoc(Leu.) paramesenteroides, Leu. citreum 및 Leu. lactis 총 7종이다. 곡류를 이용한 식용배지에서 배양한 경우, 7개 종균의 평균 균수는 7.6~8.0 log CFU/mL의 균수를 나타내었다. 대두콩으로 제조한 식용배지는 껍질을 제거한 발아 대두콩 배지에서 대부분의 균이 높은 증식량을 나타내었다. 특히 Lb. plantarum은 10.08 log CFU/mL로 가장 높은 균수를 보였다. 검은 대두콩의 경우는 껍질을 제거한 발아 검은 콩배지에서 증식량이 많았다. Lb. homohiochii는 껍질제거 발아 검은 콩배지에서 9.90 log CFU/mL로 가장 많은 증식량을 보였다. 모든 결과에서 곡류와 두류를 이용한 식용배지를 이용하여 배양할 때 젖산균 증균량이 우수함을 알 수 있었고, 특히 가장 증식량이 우수한 '껍질을 제거한 발아 검은 대두콩' 식용 배지를 향후 젖산균 모배양에 이용하는 것을 권장한다.

Keywords

References

  1. Ji GE. 1994. Composition and distribution of intestinal microbial flora in Korean. Kor J Appl Microbiol Biotechnol 22: 453-458.
  2. Doron S, Snydman DR, Gorbach SL. 2005. Lactobacillus GG: bacteriology and clinical applications. Gastroenterol Clin North Am 34: 483-498. https://doi.org/10.1016/j.gtc.2005.05.011
  3. Muller DM, Carrasco MS, Tonarelli GG, Simonetta AC. 2009. Characterization and purification of a new bacteriocin with a broad inhibitory spectrum produced by Lactobacillus plantarum lp 31 strain isolated from dry-fermented sausage. J Appl Microbiol 106: 2031-2040. https://doi.org/10.1111/j.1365-2672.2009.04173.x
  4. Gill HS. 2003. Probiotics to enhance anti-infective defences in the gastrointestinal tract. Best Pract Res Clin Gastroenterol 17: 755-773. https://doi.org/10.1016/S1521-6918(03)00074-X
  5. Jayaprakasha HM, Yoon YC, Paik HD. 2005. Probiotic functional dairy foods and health claims: an overview. Food Sci Biotechnol 14: 523-528.
  6. Saarela M, Lähteenmäki L, Crittenden R, Salminen S, Mattila- Sandholm T. 2002. Gut bacteria and health foods-the European perspective. Int J Food Microbiol 78: 99-117. https://doi.org/10.1016/S0168-1605(02)00235-0
  7. Kim MJ, Kim GR. 2006. In vitro evaluation of cholesterol reduction by lactic acid bacteria extracted from Kimchi. Korean J Culinary Res 12: 259-268.
  8. Cheigh HS, Park KY. 1994. Biochemical, microbiological, and nutritional aspects of kimchi (Korean fermented vegetable products). Crit Rev Food Sci Nutr 34: 175-203. https://doi.org/10.1080/10408399409527656
  9. Yu R. 1995. Effect of dietary hot red pepper powder on humoral immune response in rat. J Korean Soc Food Nutr 24: 837-842.
  10. Lee SG, Lee YJ, Kim MK, Han KS, Jeong SG, Oh MH, Jang A, Kim DH, Bae IH, Ham JS. 2010. A study on the yogurt manufacture suitability and antimicrobial activity of Lactobacillus plantarum LHB55 isolated from Kimchi . J Animal Sci Technol 52: 141-148. https://doi.org/10.5187/JAST.2010.52.2.141
  11. Lee AY, Park JY, Hahn YS. 2006. Study on the improvement of quality in jeung-pyun prepared with lactic bacteria having high dextransucrase activity as starters. Korean J Food Sci Technol 38: 400-407.
  12. Lee JY, Kim CJ, Kunz B. 2006. Identification of lactic acid bacteria isolated from kimchi and studies on their suitability for application as starter culture in the production of fermented sausage. Meat Sci 72: 437-445. https://doi.org/10.1016/j.meatsci.2005.08.013
  13. Lim CR, Park HK, Han HU. 1989. Reevaluation of isolation and identification of gram-positive bacteria in Kimchi. Kor J Microbiol 27: 404-414.
  14. Kim MJ, Kim BH, Han JK, Lee SY, Kim KS. 2001. Analysis of quality properties and fermentative microbial profiles of Takju and Yakju brewed with or without steaming process. J Fd Hyg Safety 26: 64-69.
  15. Shim ST, Kyung KH, Yoo YJ. 1990. Lactic acid bacteria isolated from fermenting kimchi kimchi and their fermentation of chinese cabbage juice. Korean J Food Sci Technol 22: 373-379.
  16. Lee CW, Ko CY, Ha DM. 1992. Microfloral changes of the lactic acid bacteria during Kimchi fermentation and identification of the isolates. Kor J Appl Microbiol Biotechnol 20: 102-109.
  17. Lee MK, Park WS, Kang KH. 1996. Selective media for isolation and enumeration of lactic acid bacteria from kimchi. J Korean Soc Food Sci Nutr 25: 754-760.
  18. Park SJ, Kim DH, Paek NS, Kim SS. 2006. Preparation and quality characteristics of the fermentation product of ginseng by lactic acid bacteria (FGL). J Ginseng Res 30:88-94. https://doi.org/10.5142/JGR.2006.30.2.088
  19. Ha MY, Chung SY, Kim SH. 2002. Isolation and characteristics of a homofermentative lactic acid bacterium. Korean J Biotechnol Bioeng 17: 333-338.
  20. Kim YH, Lee KB, Moon SH. 1999. A study on industrial media for production of lactic acid in batch and continuous fermentations. Korean J Biotechnol Bioeng 14: 181-187.
  21. Ahn YT, Kim GB, In YM, Jeong SG, Ham JS, Kim DW, Lee KU, Kim SK, Kim HU. 2000. A study on the production medium of lactic acid bacteria cells by using corn steep liquor. Korean J Food Sci Ani Resour 20: 181-191.
  22. http://www.sigmaaldrich.com/catalog/product/sigma/a1332?lang=ko®ion=KR#.
  23. Heenan CN, Adams MC, Hosken RW, Fleet GH. 2002. Growth medium for culturing probiotic bacteria for applications in vegetarian food products. LWT-Food Sci Technol 35: 171-176. https://doi.org/10.1006/fstl.2001.0833
  24. Kim HJ, Kang SM, Yang CB. 1997. Effects of yeast addition as starter on fermentation of kimchi . Korean J Food Sci Technol 29: 790-799.
  25. Jin HS, Kim JB, Yun YJ, Lee KJ. 2008. Selection of kimchi starters based on the microbial composition of kimchi and their effects. J Korean Soc Food Sci Nutr 37: 671-675. https://doi.org/10.3746/jkfn.2008.37.5.671
  26. Han GJ, Choi HS, Lee SM, Lee EJ, Park SE, Park KY. 2011. Addition of starters in pasteurized brined baechu cabbage increased kimchi quality and health functionality. J Korean Soc Food Sci Nutr 40: 110-115. https://doi.org/10.3746/jkfn.2011.40.1.110
  27. Lee HK, Hwang IG, Kim HY, Woo KS, Lee SH, Woo SH, Lee JS, Jeong HS. 2010. Physicochemical characteristic and antioxidant activites of cereals and legumes in Korea. J Korean Soc Food Sci Nutr 39: 1399-1404. https://doi.org/10.3746/jkfn.2010.39.9.1399
  28. Natioal Rural Living Science Institute, RDA. 2001. Food composition table. 6th revision. p 14-74.
  29. Beak LM, Kang KM, Park LY, Lee SH. 2012. Fermentation and quality characteristics of Cheongkookjang prepared with germinated soybean. Korean J Food Preserv 19: 547-553. https://doi.org/10.11002/kjfp.2012.19.4.547
  30. Yang CB, Kim ZU. 1980. Changes in nitrogen compounds in soybean sprout. evaluation of soybean sprout. J Korean Agric Chem Soc 23: 7-13.
  31. Kim JS, Kim JG, Kim WJ. 2004. Changes in isoflavone and oligosaccharides of soybeans during germination. Korean J Food Sci Technol 36: 294-298.

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