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Biological Activity of Browning Compounds from Processed Garlics Separated by Dialysis Membrane

투석막으로 분리한 가공마늘 갈변물질의 생리활성

  • Shin, Jung-Hye (Namhae Garlic Research Institute) ;
  • Kang, Min-Jung (Namhae Garlic Research Institute) ;
  • Kim, Ra-Jeong (Dept. of Food Science and Nutrition, Institute of Agriculture and Life Science, Gyeongsang National University) ;
  • Ryu, Ji-Hyun (Dept. of Food Science and Nutrition, Institute of Agriculture and Life Science, Gyeongsang National University) ;
  • Kim, Mi-Ju (Dept. of Food Science and Nutrition, Institute of Agriculture and Life Science, Gyeongsang National University) ;
  • Lee, Soo-Jung (Dept. of Food Science and Nutrition, Institute of Agriculture and Life Science, Gyeongsang National University) ;
  • Sung, Nak-Ju (Namhae Garlic Research Institute)
  • 신정혜 ((재)남해마늘연구소) ;
  • 강민정 ((재)남해마늘연구소) ;
  • 김라정 (경상대학교 식품영양학과.농업생명과학연구원) ;
  • 류지현 (경상대학교 식품영양학과.농업생명과학연구원) ;
  • 김미주 (경상대학교 식품영양학과.농업생명과학연구원) ;
  • 이수정 (경상대학교 식품영양학과.농업생명과학연구원) ;
  • 성낙주 ((재)남해마늘연구소)
  • Received : 2010.12.15
  • Accepted : 2011.01.19
  • Published : 2011.03.31

Abstract

This study was conducted to compare biological activity of browning compounds from fresh, red and black garlic. Water soluble browning compounds were separated from fresh, red and black garlic by dialysis membrane. Antioxidation and other biological activities of freeze dried inner and outer parts from garlics were compared. pH of fresh and red garlic dialysis solutions were higher in inner part of membrane, but black garlic dialysis solution showed reverse tendency. Browning intensities of all tested samples were higher in outer part of dialysis solutions. In inner part dialysis solutions, contents of total phenol compounds were the lowest in red garlic while their contents were the highest in black garlic and thereafter, were the highest in inner part of dialysis solution made from red garlic. Flavonoids content was the highest in inner part of red garlic dialysis solution. Total pyruvate content was higher in outer part of fresh and red garlic dialysis solution which showed the opposite results in black garlic. Total thiosulfate content was the highest in black garlic, red garlic and fresh garlic in order. Antioxidant activities have some similarities among garlic products. DPPH radical scavenging activity was higher in inner part of fresh and black garlic and outer part of red garlic. Tyrosinase inhibition activity was higher in browning compounds of red garlic than fresh and black garlic. $\alpha$-glucosidase inhibition activity of tested samples were higher in inner part of dialysis solution than outer part, and showed higher activity in red garlic than fresh garlic at low sample concentrations.

마늘 및 숙성을 통한 가공마늘 갈변물질의 생리활성을 규명하고자 생마늘, 중간숙성 마늘인 홍마늘 및 흑마늘의 수용성 갈변물질을 투석막을 이용하여 투석내액 및 외액으로 분리한 다음 동결 건조하여 항산화활성을 중심으로 생리활성을 비교분석하였다. 생마늘 및 홍마늘 투석액의 pH는 내액에서 더 높았으나 흑마늘은 이와 상반되게 투석외액의 pH가 더 높았고, 갈변물질은 생마늘, 홍마늘 및 흑마늘 모두 투석외액에서 더 높은 함량이었다. 총 페놀 화합물의 함량은 투석내액의 경우 홍마늘에서 가장 낮았고 흑마늘에서 가장 높았으나, 투석외액에서는 홍마늘에서 가장 높은 함량이었다. 플라보노이드 화합물의 함량은 흑마늘 투석내액에서 가장 높았으며, total pyruvate의 함량은 생마늘과 홍마늘의 경우 투석외액에서 더 높았으나 흑마늘은 이와 상반된 결과였다. Total thiosulfinate의 함량은 흑마늘에서 가장 높았고, 다음으로 홍마늘, 생마늘의 순서였다. DPPH 라디칼 소거활성은 생마늘과 흑마늘의 경우 투석내액이, 홍마늘은 외액에서 더 활성이 높았고, tyrosinase 저해활성은 홍마늘 투석액이 생 마늘 및 흑마늘에 비해 더 활성이 높았다. $\alpha$-Glucosidase 저해활성은 투석내액이 외액보다 높았으며, 저농도에서 홍마늘은 생마늘보다 활성이 더 높았다. 이상의 결과를 종합하여 볼 때 생마늘과 홍마늘의 항산화 활성은 투석외액에서 더 높으며, tyrosinase 및 $\alpha$-glucosidase 저해활성은 투석내액에서 더 높았고, 이들에 비해 갈변 반응이 더 많이 진행된 흑마늘의 경우 투석내액의 생리활성이 더 높아 마늘의 갈변정도에 따라 생리활성에 기여하는 갈변물질의 분자 크기가 상이함을 확인할 수 있었다.

Keywords

References

  1. Borek C. 2001. Antioxidant health effects of aged garlic extract. J Nutr 131: 1010S-1015S. https://doi.org/10.1093/jn/131.3.1010S
  2. Heber D. 1997. The stinking rose: organosulfur compounds and cancer. J Clin Nutr 66: 425-426. https://doi.org/10.1093/ajcn/66.2.425
  3. Moriguchi T, Saito H, Nishiyama N. 1997. Anti-aging effect of aged garlic extract in the inbred brain atrophy mouse model. Clin Exp Phaemacol Physiol 24: 235-242. https://doi.org/10.1111/j.1440-1681.1997.tb01813.x
  4. Son SJ, Lee SP. 2010. Effects of black garlic on the rheological and functional propertied of garlic fermented by Leuconostoc mesenteroides. J Korean Soc Food Sci Nutr39: 864-871.
  5. Shin JH, Choi DJ, Lee SJ, Che JY, Sung NJ. 2008. Antioxidant activity of black garlic (Allium sativum L). J Korean SocFood Sci Nutr 37: 965-971. https://doi.org/10.3746/jkfn.2008.37.8.965
  6. Kang MJ, Lee SJ, Shin JH, Kang SK, Kim JG, Sung NJ.2008. Effect of garlic with different processing on lipid metabolismin 1% cholesterol fed rats. J Korean Soc Food Sci Nutr 37: 162-169. https://doi.org/10.3746/jkfn.2008.37.2.162
  7. Amagase H, Petesch BL, Matsuura H, Kasuga S, Itakura Y. 2001. Intake of garlic and its bioactivity components. JN131: 955S-962S.
  8. Ide N, Lau B HS, Ryu K, Matsuura H, Itakura Y. 1999.Antioxidant effects of fructosyl arginine, a Maillard reaction product in aged garlic extract. J Nutr Biochem 10:372-376. https://doi.org/10.1016/S0955-2863(99)00021-2
  9. Liu L, Yeh YY. 2001. Water-soluble organosulfur compounds of garlic inhibit fatty acid and triglyceride synthesis in cultured rat hepatocytes. Lipids 36: 395-400. https://doi.org/10.1007/s11745-001-0734-4
  10. Gutfinger T. 1981. Polyphenols in olive oils. JAOCS 58:966-968. https://doi.org/10.1007/BF02659771
  11. Moreno MIN, Isla MI, Sampietro AR, Vattuone MA. 2000.Comparison of the free radical scavenging activity of propolis from several region of Argentina. J Ethnopharmacol71: 109-114. https://doi.org/10.1016/S0378-8741(99)00189-0
  12. Cavagnaro PF, Senalik D, Galmarini CR, Simon PW. 2005.Correlation of pungency, thiosulfinates, antiplatelet activity and total soluble solids in two garlic families. American Society for Horticultural Sciences Annual Conference, Las Vegas, NV, USA. p 1019.
  13. Schwimmer S, Weston WJ. 1961. Onion flavor and order, enzymatic development of pyruvic acid in onion as a measure of pungency. J Anal Food Chem 9: 301-304. https://doi.org/10.1021/jf60116a018
  14. Freeman GG, Mcbreen F. 1973. A rapid spectrophotometric methods of determination of thiosulfinate in onion and its significance in flavor studies. Biochem Soc Trans 1: 1150-1154. https://doi.org/10.1042/bst0011150
  15. Blois MS. 1958. Antioxidant determination by the use of a stable free radical. Nature 181: 1199-1200. https://doi.org/10.1038/1811199a0
  16. Oyaizu M. 1986. Studies on products of browning reactions: antioxidative activities of products of browning reaction prepared from glucosamine. Jpn J Nutr 44: 307-315. https://doi.org/10.5264/eiyogakuzashi.44.307
  17. Re R, Pellegrini N, Pannala A, Yang M, Rice-Evans C. 1999.Antioxidant activity applying an improved ABTS radical cation decolorization assay. Free Radic Biol Med 26:1231-1237. https://doi.org/10.1016/S0891-5849(98)00315-3
  18. Song HS, Moon KY. 2006. In vitro antioxidant activity profiles of $\beta$-glucans isolated from yeast Sacharomyces cerevisiae and mutant Sacchromyces cerevisiae IS2. Food Sci Biotechnol 15: 437-440.
  19. Yagi A, Kanbara T, Morinobu N. 1986. The effect of tyrosinase inhibition for aloe. Planta Med 3981: 517-519.
  20. Choe M, Kim DJ, Lee HJ, You JK, Seo DJ, Lee JH, ChungMJ. 2008. A study on the glucose regulating enzymes and antioxidant activities of water extracts from medicinal herbs. J Korean Soc Food Sci Nutr 37: 542-547. https://doi.org/10.3746/jkfn.2008.37.5.542
  21. Shin JH, Choi DJ, Lee SJ, Cha JY, Kim JG, Sung NJ. 2008.Changes of physicochemical components and antioxidant activity of garlic during its processing. J Life Sci 18: 1123-1131. https://doi.org/10.5352/JLS.2008.18.8.1123
  22. Lee JW, Lee SK, Do JH, Sung HS, Shim KH. 1995. Browning reaction of fresh ginseng (Panax ginseng C. A. Meyer) as affected by heating temperature. Korean J Ginseng Sci 19:249-253.
  23. Shin JH, Choi DJ, Chung MJ, Kang MJ, Sung NJ. 2008.Changes of physicochemical components and antioxidant activity of aged garlic at different temperatures. J KoreanSoc Food Sci Nutr 37: 1174-1181. https://doi.org/10.3746/jkfn.2008.37.9.1174
  24. Delgado-Andrade C, Rufian-Henares JA, Morales FJ. 2005.Assessing the antioxidant activity of melanoidins from coffee brews by different antioxidant methods. J Agric Food Chem 53: 7832-7836. https://doi.org/10.1021/jf0512353
  25. Queiroz YS, Ishimoto EY, Bastos DHM, Sampaio GR, Torres EAFS. 2009. Garlic (Allium sativum) and ready-to-eat garlic products: In vitro antioxidant activity. Food Chem115: 371-374. https://doi.org/10.1016/j.foodchem.2008.11.105
  26. Lee SJ, Shin JH, Kang MJ, Jung WJ, Ryu JH, Kim RJ, SungNJ. 2010. Antioxidant activity of aged red garlic. J Life Sci20: 775-781. https://doi.org/10.5352/JLS.2010.20.5.775
  27. Woo KS, Yoon HS, Lee YR, Lee JS, Kim DJ, Hong JT,Jeong HS. 2007. Characteristics and antioxidative activity of volatile compounds in heated garlic (Allium sativum).Food Sci Biotechnol 16: 822-827.
  28. Kim SD, Do JH, Oh HI. 1981. Antioxidant activity of Panax ginseng browning products. J Korean Agric Chem Soc 24:161-166.
  29. Jang EK, Seo JH, Lee SP. 2008. Physiological activity and antioxidative effects of aged black garlic (Allium sativum)extract. Korean J Food Technol 40: 443-448.
  30. Lertittikul W, Benjakul S, Tanaka M. 2007. Characteristics and antioxidative activity of Maillard reaction products from porcine plasma protein-glucose model system as influenced by pH. Food Chem 100: 669-677. https://doi.org/10.1016/j.foodchem.2005.09.085
  31. Lee YR, Hwang IG, Woo KS, Kim DJ, Hong JT, Jeong HS.2007. Antioxidative activities of the ethyl acetate fraction from heated onion (Allium cepa). Food Sci Biotechnol 16: 1041-1045.
  32. Somoza V. 2005. Five years of research on health risks and benefits of Maillard reaction products: An update. Mol Nutr Food Res 49: 663-672. https://doi.org/10.1002/mnfr.200500034
  33. Moreno FJ, Corzo-Martinez M, Dolores del Castillo M,Villamiel M. 2006. Changes in antioxidant activity of dehydrated onion and garlic during storage. Food Res Int 39: 891-897. https://doi.org/10.1016/j.foodres.2006.03.012
  34. Jung SW, Lee NK, Kim SJ, Han DS. 1995. Screening of tyrosinase inhibitor from plants. Korean J Food SciTechnol 27: 891-896.
  35. Jung EY, Hong YH, Kim SH, Suh HJ. 2010. Physiological effects of formulations added with black garlic extract on skin care: oxidative stress, tyrosinase and elastase activities.J Korean Soc Food Sci Nutr 39: 662-668. https://doi.org/10.3746/jkfn.2010.39.5.662
  36. Cha JY, Yang HJ, Jeong JJ, Seo WS, Park JS, Ok M, ChoYS. 2010. Tyrosinase inhibition activity and antioxidant capacity by fermented products of some medicinal plants. JLife Sci 20: 940-947. https://doi.org/10.5352/JLS.2010.20.6.940
  37. Shin JH, Kang MJ, Lee SJ, Yang SM, Ryu JH. Sung NJ.2009. Biological activity of dried garlic, red ginseng and tieirmixture. J Korean Soc Food Sci Nutr 38: 1633-1639. https://doi.org/10.3746/jkfn.2009.38.12.1633
  38. Mooradian AD, Thurman JE. 1999. Drug therapy of post prandial hyperglycemia. Drugs 57: 19-29.
  39. Baynes JW, Thorpe SR. 1999. Role of oxidative stress in diabetes complications: a new perspective on an old paradigm.Diabetes 48: 1-9. https://doi.org/10.2337/diabetes.48.1.1

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