Biological Activity of Omija (Schizandra chinensis Baillon) Extracts

오미자(Schizandra chinensis Baillon) 추출물의 생리활성

  • Ju, In-Sik (Department of Food Engineering Sangju National University) ;
  • Kim, Byung-Chul (Mungyeong City Agricultural Technology & Extension Center) ;
  • Lee, Woo-Shik (Mungyeong City Agricultural Technology & Extension Center) ;
  • Kim, Mi-Ja (Mungyeong City Agricultural Technology & Extension Center) ;
  • Lee, Byoung-Gu (Department of Culinary & Bakery Youngnam Foreign Language College) ;
  • An, Bong-Jeun (Department of Cosmeceutical Science, Daegu Hanny University) ;
  • Kim, Jeung-Hoan (NIP Biotech) ;
  • Kwon, Oh-Jun (Gyeongbuk Regional Innovation Agency) ;
  • Cho, Young-Je (Department of Food Engineering Sangju National University)
  • 주인식 (상주대학교 식품공학과) ;
  • 김병철 (문경시농업기술센터) ;
  • 이우식 (문경시농업기술센터) ;
  • 김미자 (문경시농업기술센터) ;
  • 이병구 (영남외국어대학 호텔조리제빵과) ;
  • 안봉전 (대구한의대학교 화장품약리학과) ;
  • 김정환 (엔아이피 바이오텍) ;
  • 권오준 (경북전략산업기획단) ;
  • 조영제 (상주대학교 식품공학과)
  • Published : 2007.09.30

Abstract

Extracts from Schizandra chinensis Baillon (Korean name: Omija) were tested for antioxidant and their inhibitory activities of ${\alpha}-amylase$ and ${\alpha}-glucosidase$. Total contents of phenolics were found as 4.35 mg/g (water extract)${\sim}$6.35 mg/g (60% ethanol extract). Electron donating ability (EDA), ABTS [2,2'-azinobis(3-ethyl-benzothiaznoline-6-sulfonic acid)] radical decolorization, antioxidant protection factor (PF) and thiobarbituric acid reactive substance (TBARS) were measured for the antioxidative activity of the extracts from S. chinensis. The water extract were determined as 97.5% at 200 ${\mu}g/ml$ while the activity of 60% ethanol extract were 96.2% at 200 ${\mu}g/ml$ in EDA. The 60% ethanol extract showed higher antioxidant activity than water extract when evaluated by ABTS radical decolorization, antioxidant PF and TBARS. ${\alpha}-Amylase$ inhibitory activity of water extract was similar with that of 60% EtOH extract. ${\alpha}-glucosidase$ inhibitory activities of water extract (97.4%) was higher than that of 60% ethanol extract (84.5%) at 200 ${\mu}g$/ml. The water extract from S. chinensis did not show an antimicrobial activity against Helicobacter pylori, but the 60% ethanol extract showed high antimicrobial activities such as 23 ${\pm}$ 1.6 mm of clear zone in 200 ${\mu}g/ml$ of phenolics. The result suggest that the water and 60% ethanol extract from S. chinensis will be useful as natural antioxidants and functional foods.

오미자 추출물로부터 항산화효과 및 ${\alpha}-amylase$, ${\alpha}-glucosidase$ 저해활성 및 Helicobacter pylori균에 대한 항균효과를 알아보았다. 페놀함량을 측정한 결과 물 추출물에서는 4.35 mg/g로 나타났으며, ethanol 추출물에서는 60% ethanol 추출물이 6.35 mg/g로 가장 높은 페놀함량을 나타내었다. 항산화효과와 ${\alpha}-amylase$, ${\alpha}-glucosidase$ 저해활성은 추출물의 농도를 200 ${\mu}g/ml$로 조절하여 실험하였다. DPPH에 대한 전자공여능은 물 추출물에서는 97.5%, 60% ethanol 추출물에서는 96.2%로 나타났으며, ABTS radical decolorlization을 측정한 결과 물 추출물에서는 96.8%, 60% ethanol 추출물에서는 97.0%로 나타났다. Antioxidant protection factor에서는 물 추출물이 1.77 PF, 60% ethanol 추출물은 2.08 PF로 나타났으며, PF와 같이 지용성 물질의 항산화력을 나타내는 TBARS값은 control값이 $1.17{\times}10^2$ ${\mu}M$으로 나타났고, 물 추출물에서는 $1.03{\times}10^2$ ${\mu}M$, 60% ethanol 추출물에서는 $0.54{\times}10^2$ ${\mu}M$의 TBARS값을 나타내어 지질과산화 억제 효과는 물 추출물보다 60% ethanol 추출물이 더 높은 것으로 나타났다. ${\alpha}-Amylase$ 저해활성을 측정한 결과, 물과 60% ethanol 추출물 모두에서 100%의 높은 저해활성을 나타내었으며, ${\alpha}-glucosidase$ 저해활성효과는 물 추출물에서는 97.4%, 60% ethanol 추출물에서는 84.5%로 물 추출물에서 더 높게 나타났다. H. pylori균에 대한 항균활성은 200 ${\mu}g/ml$의 농도의 60% ethanol 추출물에서 $23{\pm}1.6$ mm의 저해환을 나타내었다.

Keywords

References

  1. Wiseman, H. (1996) Dietary influences on membrane function: Important in protection against oxidative damage and disease. Nutritional Biochemistry 7, 2-6 https://doi.org/10.1016/0955-2863(95)00152-2
  2. Gutteridge, J. M. C. and Halliwell, B. (1994) In Antioxidants in mutrition, health, and disease. Oxford University Press, pp. 1- 62
  3. Miquel, J., Quintanilha, A. T. and Weber, H. (1989) Handbook of free radicals and antioxidants in biomedicine. CRC Press, pp. 223-244
  4. Peak, N. S. and Kim, Y. M. (1998) ${\alpha}$-Glucosidase inhibition by culture broth of Streptomyces sp. NS15. Korean J. Food Nutr. 11, 640-646
  5. Nomura, M., Nakachiyama, M., Hida, T., Ohtaki, Y., Sudo, K., Aizawa, T., Aburada, M. and Miyamoto, K. I. (1994) Gomisin A, a lignan component of Schizandrora fruits, inhibits development of preneoplastic lesions in rat liver by 3'-methyl- 1,4-dimethylaminoazobenzwne, Cancer Lett. 76, 11-18 https://doi.org/10.1016/0304-3835(94)90128-7
  6. Nishiyama, N., Chu, P. J. and Saito. H.(1996) A herbal prescription, S113m, consisting and schizandra, improves learning performance in senescence accelerated mouse. Biol. Pharm. Bull. 19, 388-393 https://doi.org/10.1248/bpb.19.388
  7. Long, Z. Z. and Xie, S. S. (1979) Experimental study on the enhancement of the immunosuppresive effect of cortisone by wurenchun, an extract of Schizandra chinensis BAILL I. Isolation and structure determination of five new lignans A, B, C, F and G and the absolute structure of schzandrin. Chem. pharmacol. Bull. 27, 1383-1394 https://doi.org/10.1248/cpb.27.1383
  8. Lee, J. S. and Lee, S. W. (1990) Effect of water extract in fruit of Omija (Schizandra chinensis Baillon) on alcohol metabolism. Korean J. Dietry Culture 5, 259-262
  9. Haglind, C. and Tengblad, J. (1994) Effects of caffeine containing energy drinks. Scand. J. Nutr. 43, 169-175
  10. Yang, H. C., Lee, J. M. and Song, K. B. (1982) Anthocyanins in cultured Omija (Schizandrae chinensis Baillon) and its stability. J. Korean Agr. Chem. Soc. 25, 35-43
  11. Lee, J. S. and Lee, S. W. (1989) A study on the compositions of free sugar, lipids, and nonvolatile organic acids in parts of Omija (Schizandrae chinensis Baillon), Korean J. Dietary culture 4, 177-179
  12. Kim, K. S., Shim, S. H., Jeon,g G. H. and Cheong, C. S. (1998) Antidiabetic activity of constituents of Lycii fructus. J. Appl. Pharma. 6, 378-382
  13. Blois, M. S. (1958) Antioxidant determination by the use of stable free radical. Nature 26, 1198-1199
  14. Pellegrin, N., Re, R., Yang, M. and Rice-Evans, C. (1998) Screening of dietary carotenoids and carotenoid-rich fruit extracts for antioxidant activites applying 2,2'-azinobis (3- ethylbenzothiazoline-6-sulfonic acid) radical cation decolorization assay. Method Enzymol. 299, 379-389
  15. Andarwulan, N. and Shetty, K. (1999) Phenolic content in differentiated tissue cultures of untransformed and Agrobacteriumtransformed roots of anise (pimpinella anisum L.) J. Agric. Food Chem. 47, 1776-1780 https://doi.org/10.1021/jf981214r
  16. Buege, J. A. and Aust, S. D. (1978) Microsomal lipid peroxidation. Method Enzymol. 105, 302-310
  17. Cavidson, P. H. and Parish, M. E. (1989) Methods of testing the efficacy of food antimicrobials. Food Technol. 43, 148-150
  18. Tibbot, B. K. and skadsen, R. W. (1996) Molecular cioning and characeriwation of a gibberellin-inducible, putative ${\alpha}$- glucosidase gene from berley. Plan Mol. Biol. 30, 229-241 https://doi.org/10.1007/BF00020110
  19. Chun, S. S., Vattem, D. A., Lin, Y. T. and Shetty, K. (2005) Phenolic antioxidants from clonal oregano (Origanum vulgare) with antimicrobial activity against Helicobacter pylori. Process Biochemistry 40, 809-816 https://doi.org/10.1016/j.procbio.2004.02.018
  20. Cuvelier, M. E. Richahard, H. and Berset, C. (1998) Antioxidative activity of phenolic composition of pilot plant and commercial extracts of sage and rosemary. J. Am. Oil Chem. Soc. 73, 645-652 https://doi.org/10.1007/BF02518121
  21. Zielinski, H. and Kozlowska, H. (2000) Antioxidant activity and total phenolics in selsected cereal grains and their different morphological fractions. J. Agric. Food Chem. 48, 2008-2010 https://doi.org/10.1021/jf990619o
  22. Torel, J., Gillard, J. and Gillard, P. (1986) Antioxidant activity of flavonoids and reactivity with peroxy radical. Phytochemistry 25, 383-385 https://doi.org/10.1016/S0031-9422(00)85485-0
  23. Kim, E. Y., Baik, I. H., Kim, J. H., Kim, S. R., Rhyu M. R. (2004) Screening of the Antioxidant Activity of Some Medicinal Plants. Korean J. Food Sci. Tech. 36, 333-338
  24. Ko, B. S., Park, S. K., Choi, S. B., Jun D. H., Choi, M. K., Park, S. M. (2004) A Study on Hypoglycemic Effects of Crude Extracts of Schizandrae Fructus. J. Korean Soc. Appl. Biol. Chem. 47, 258-264