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Fermentation and Quality Characteristics of Cheongkookjang Prepared with Germinated Soybean

발아콩으로 제조한 청국장의 발효 및 품질특성

  • Beak, Lag-Min (Department of Food Service & Technology, Catholic University of Daegu) ;
  • Kang, Kyoung-Myoung (Department of Food Service & Technology, Catholic University of Daegu) ;
  • Park, La-Young (Department of Food Service & Technology, Catholic University of Daegu) ;
  • Lee, Shin-Ho (Department of Food Service & Technology, Catholic University of Daegu)
  • 백낙민 (대구가톨릭대학교 식품가공학과) ;
  • 강경명 (대구가톨릭대학교 식품가공학과) ;
  • 박나영 (대구가톨릭대학교 식품가공학과) ;
  • 이신호 (대구가톨릭대학교 식품가공학과)
  • Received : 2012.06.11
  • Accepted : 2012.08.03
  • Published : 2012.08.30

Abstract

Cheongkookjang that was prepared with three kinds of soybeans [non-germinated soybean (NG), soybeans germinated for 12 hr (GS12), and soybeans germinated for 24 hr (GS24)] were investigated. The changes in the pH, total aerobes, and slime content of Cheongkookjangs that were prepared with NG, GS12 and GS24 did not significantly differ during their fermentation for 48 hr at $40^{\circ}C$. The total aerobes of the Cheongkookjang variants reached $10^8{\sim}10^9$ CFU/mL after theirfermentation for 48 hr. The total polyphenol content and DPPH-radical-scavenging activities the germionated and non-germinated soybeans did not significantly differ, but increased significantly according to the germination degree during the fermentation. The isoflavone content of the Cheongkookjang with the germinated soybean increased. The isoflavone content of Cheongkookjang variant were 0.141 mg/g (NG), 0.369 mg/g (GS12) and 0.569 mg/g (GS24); their free amino acid contents were 254.26 mg% (NG), 337.49 mg% (GS12) and 528.78 mg% (GS24); and their sensory characteristics such as their taste, color, flavor, bitter taste, texture, and overall acceptability did not significantly differ.

짚에서 분리한B. licheniformis B-59를 starter로 사용하여 12시간(GS12), 24시간(GS24) 동안 발아시킨 발아콩을 이용한 청국장의 발효 및 품질 특성을 대조구(NG)과 비교하였다. 청국장의 발효 과정 중 발아시간에 따른 총균수와 pH의 변화는 뚜렷한 차이를 나타내지 않았다. 총균수는 발효 48시간 후 $10^8{\sim}10^9$ CFU/mL, pH는 6.90~7.01의 범위를 나타내었다. 발효 과정 중 점질물 함량은 증가하였으며, 유의적인 차이는 관찰되지 않았다. 환원당 함량은 발효 12시간째 1.5~3배 증가하였으며, 이후 감소하였다. 발아시간에 따른 원료 콩의 총 폴리페놀 함량, 전자공여능은 뚜렷한 차이를 나타내지 않았으나, 발효 과정 중 발아시간에 따른 증가현상은 뚜렷하였다. 이소플라본 함량 중 daidzein함량은 발효전 처리구간의 차이는 나타내지 않았으나, 발효 후 NG 0.095 mg/g, GS12 0.218 mg/g 그리고 GS24 0.344 mg/g로 원료 콩의 발아 시간에 따라 청국장의 daidzein 함량은 증가하였다. 발효 후 청국장의 genistein 함량은 NG는 0.046 mg/g, GS12 0.151 mg/g, GS24 0.225 mg/g로 발아에 의해 증가하였다. 원료 콩의 유리 아미노산 함량은 각각 135.18 mg% (NG), 194.31 mg% (GS12), 262.32 mg% (GS24)로 발아시간에 따라 증가하였다. 발효 후 총 유리아미노산의 함량은 각각 254.26 mg% (NG), 337.49 mg% (GS12), 528.78 mg% (GS24)로 뚜렷하게 증가하였다. 맛, 색상, 풍미, 쓴맛, 조직감, 종합적기호도 등 청국장의 기호성은 처리구간의 유의적인 차이는 나타나지 않았다.

Keywords

References

  1. Kwak CS, Yeon KM, Kim SA, Sook LM (2006) Cytotoxicity on human cancer cells antitumorigenesis of chungkookjang, a fermented soybean product, in DMBAtreaated rats. J Korean Soc Food Sci Nutr, 39, 347-356
  2. Lee JO, Ha SD, Kim AJ, Yuh CS, Bang IS, Park SH (2005) Industrial application and physiological functions of chungkukjang. Food Sci Ind, 38, 69-78
  3. Lee BY, Kim DM, Kim KH (1991) Studies on the change in rheological properties of Chungkook-jang. Korean J Food Sci Technol, 23, 478-484
  4. Suh JS, Ryu MK, Hur YH (1983) Effect on Bacillus strains on the chongkookjang prosessing(III). J Korean Soc Food Sci Nutr, 15, 385-391
  5. Youn KC, Kim DH, Kim JO, Park BJ, Yook HS, Cho JM, Byun MW (2002) Quality characteristics of the Chungkookjang fermented by the mixed culture of Bacillus natto and B. licheniformis. Korean J Food Sci Technol, 31, 201-210 https://doi.org/10.3746/jkfn.2002.31.2.204
  6. Kim JS (1996) Current research trends on bioactive function of soybean. Korean Soybean Digest, 13, 17-24
  7. Wei H, Wei L, Frenkel K, Bowen R, Barnes S (1993) Inhibition of tumor promoter-induced hydrogen peroxide formation in vitro and in vivo by genistein. J Nutr Cancer, 20, 1-2 https://doi.org/10.1080/01635589309514265
  8. Hodgson JM, Croft KD, Puddey IB, Mori TA, Bellin LL (1996) Soybean isoflavonoids and their metabolic products inhibit in vitro lipoprotein oxidation in serum. Nutr Biochem, 7, 664-669 https://doi.org/10.1016/S0955-2863(96)00133-7
  9. Rifici VA, Schneider SH, Khachadurian AK (1994) Stimulation of low-density lipoprotein oxidation by insulin and insulin growth factor I. Atherosclerosis, 107, 99-108 https://doi.org/10.1016/0021-9150(94)90145-7
  10. Yang CB, Kim ZU (1980) Changes in nitrogen compounds in soybean sprout. J Korean Agric Chem Soc, 23, 7-13
  11. Kim JS, Kim JG, Kim WJ (2004) Changes in isoflavone and oligosaccharides from soybeans during germination. Korean J Food Sci Technol, 36, 294-298
  12. Lee HY (2005) Isoflavone and quality improvement of soymilk by using germinated soybean. MS Thesis, Sejong University, Seoul, Korea
  13. Lee SH, Chung DH (1982) Studies on the effects of plant growth regulator on growth and nutrient compositions in soybean sprout. J Korean Agric Chem Soc, 25, 75-82
  14. Lee SH, Beak LM, Park LY (2008) Physiological characteristics of Bacillus spp. isolated from rice straw a Cheonggukjang starter. Korean J Food Sci Technol, 40, 562-567
  15. Choi UK, Kim MH, Lee NH, Jeong YS, Hwang YH (2007) The Characteristics of cheonggukjang, a kind of fermented soybeans, by the germination degree of raw soybean. Food Sci Biotechnol, 16, 734-739
  16. Lee YL, Kim SH, Choung NH and Yim MH (1992) A study on the production of viscous substance during the Chungkookjang fermentation. J Korean Agric Chem Soc, 35, 202-209
  17. Miller GL (1959) Use of Dinitrosalicylic Acid Reagent for Determination of Reducing Sugar. Anal Chem, 31, 426-428 https://doi.org/10.1021/ac60147a030
  18. Singleton VL, Joseph A, Rossi J (1965) Colorimetry of total pheonolics with phosphomolibdic-phosphotungsitc acid reagent. Am J Clin Nutr, 68, 1474-1479
  19. Blois MS (1958) Antioxidant determination by the use of a stable free radical. Nature, 26, 1199-1204
  20. Song T, Barua K, Buseman G, Murphy PA (1998) Soy isoflavone analysis: quality control and a new internal standard. Am J Clin Nutr, 68, 1474-9 https://doi.org/10.1093/ajcn/68.6.1474S
  21. Youn KC, Kim DH, Kim JO, Park BJ, Yook HS, Cho JM, Byun MW (2002) Quality characteristics of the Chungkookjang fermented by the mixed culture of Bacillus natto and B. licheniformis. Korean J Food Sci Technol, 31, 201-210 https://doi.org/10.3746/jkfn.2002.31.2.204
  22. Kim JS, Yoo SM, Choe JS, Park HJ, Hong SP, Chang CM (1998) Physicochemical properties of traditional Chonggugjang produced in different regions. Agric Chem Biotech, 41, 377-383
  23. Shon MY, Kwon SH, Sung CK, Sung CK, Park SK, Choi SD (2001) Changes in chemical components of Chungkugjang prepared with small black bean. Korean J Life Science, 11, 284-290
  24. In JP, Lee SK (2004) Effect of yucca(Yucca shidigera) extract on quality characteristics of chungkukjang using Bacillus subtillis p01. J Korean Soc Appl Biol Chem, 47, 176-181
  25. Lee YL, Kim SH, Choung NH and Yim MH (1992) A study on the production of viscous substance during the Chungkookjang fermentation. J, Korean Agric Chem Soc, 35, 202-209
  26. Woo SM, Kwon JH, Jeong YJ (2006) Selection and fermentation characteristics of Cheongbukjang strains. J Korean Food Preserv, 13, 77-82
  27. Lee JH, Min DB (2006) Nutraceuticals, aging, and food oxidation. Handbook of functional Lipids. Taylor & Francis Group, LLC CRC Press, USA, p 325-350
  28. Gramaza A, Khokhar S, Yoko S, Swiglo AG., Hes M, Korczak J (2006) Antioxidant activity of tea extracts in lipids and correlation with polyphenol content. Eur J Lipid Sci Technol, 108, 351-362 https://doi.org/10.1002/ejlt.200500330
  29. Aoshima H, Tsunoue H, Koda H, Kiso Y (2004) Aging of whiskey increases 1,1-diphenyl-2-picrylhydrazl radical scavenging activity. J Agric Food Chem, 52, 5240-5244 https://doi.org/10.1021/jf049817s
  30. Kang YH, Park YK, Lee GD (1996) The nitrite scavenging and electron donating ability of phenolic compounds. Korean J Food Sci Technol, 28, 232-239
  31. Lee JJ, Cho CH, Kim JY, Kee DS, Kim HB (2001) Antioxidant activity of substances extracted by alcohol from chungkukjang powder. Korean J Microbiol, 37, 177-181
  32. Kurzer MS, Xu X (1997) Dietary phytoestrogens. Annu Rev Nutr, 17, 358-387
  33. Wang HJ, Murphy PA (1994) Isoflavone content of commercial soybean foods. J Agric Food Chem, 42, 1666-1673 https://doi.org/10.1021/jf00044a016
  34. Joo HK (1996) Studies on chemical composition of commercial Chungkukjang and flavor compounds by mugwort (Artimisia asiatica) or red pepper seed oil. J Korean Soybean Digest, 13, 44-56
  35. Kim KJ, Ryu MK and Kim SS (1982) Chungkookjang koji fermentation with rice straw. Korean J Food Sci Technol, 14, 301-308

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