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A Comparative Study of Physiological Activity of Glycyrrhiza uralensis Fischer Stems and Leaves by Processing Methods

감초 경엽(莖葉)의 포제방법에 따른 생리활성 비교

  • Park, Jeong Seob (Korea Agricultural Management Technique Institute) ;
  • Park, Sun Hee (Department of Oriental Medicine Resources, Chonbuk National University) ;
  • Oh, Il Soo (Department of Oriental Medicine Resources, Chonbuk National University) ;
  • Chang, Young Nam (Department of Oriental Medicine Resources, Chonbuk National University) ;
  • Bang, Keuk Soo (Department of Oriental Medicine Resources, Chonbuk National University) ;
  • Byeon, Eun Ju (Department of Oriental Medicine Resources, Chonbuk National University) ;
  • Lee, Jeong Ho (Department of Oriental Medicine Resources, Chonbuk National University)
  • 박정섭 (한국농업경영기술연구원) ;
  • 박선희 (전북대학교 한약자원학과) ;
  • 오일수 (전북대학교 한약자원학과) ;
  • 장영남 (전북대학교 한약자원학과) ;
  • 방극수 (전북대학교 한약자원학과) ;
  • 변은주 (전북대학교 한약자원학과) ;
  • 이정호 (전북대학교 한약자원학과)
  • Received : 2013.08.30
  • Accepted : 2013.10.28
  • Published : 2013.10.31

Abstract

This study investigates the change of chemical components, antioxidant and antimutagenic activity in Glycyrrhiza uralensis Fischer stems and leaves (GU) by the various processing methods, as follows: fresh (GU-1), dried under the shade (GU-2), blanched (GU-3), roasted 3 times (GU-4), roasted 4 times (GU-5). The components have been identified and quantified through the use of gas chromatograph-mass spectrometry (GC-MS). At results, cis-1,3-dimethyl-2-methylenecyclohexaneat at 19.7 min and n-hexadecanoic acid at 21.5 min were detected in five kinds of extract. 3-O-Methyl-D-fructose at 17.8 min was observed in four extracts except in GU-1 and aminopyrazine at 19.8min was observed in four extracts except in GU-4. The total phenolics contents was high in GU-4(3.38 g/100 g). ABTS radical scavenging was high in GU-5($EC_{50}$, 0.57 ug) and DPPH radical scavenging was high in GU-4($EC_{50}$, 2.66 ug). The extracts of GU-3, GU-4, and GU-2 were most potent in anti-mutagenicity activity against 1-NP, Trip-P-1, and Trip-P-2, respectively. GU-3 and GU-4 also showed most potent effect of anti-mutagenicity on 2-AA and AFB1, respectively.

포제 방법에 따른 감초경엽의 성분변화 및 항산화, 항돌연변이원성을 평가하였다. 성분변화를 관찰하기 위해 GC-Mass의 분석한 결과 각 추출물에서 공통으로 분석된 성분은 19.7분에서 cis-1,3-dimethyl-2-methylene-cyclohexane과 21.5에서 n-hexadecanoic acid이 모두 분석되었으며, 17.8분에서는 3-O-methyl-D-Fructose가 끓는 물에 데친 감초경엽에서 19.8분에서는 aminopyrazine이 4회 볶은 감초 잎과 줄기 추출물만 분석되지 않고 4가지 모두에서 분석되었다. 항산화 활성 측정에서는 DPPH 라디칼 소거활성에서 3회 볶은 감초경엽에서 $EC_{50}$$2.66{\pm}0.09{\mu}g$으로 가장 높은 활성을 나타났으며, ABTS 라디칼 소거활성은 4회 볶은 감초경엽에서 $EC_{50}$$0.57{\pm}0.22{\mu}g$으로 가장 높았다. 환원력 측정에서는 3회 볶은 감초 잎과 줄기 추출물에서 가장 높게 나타났으며, 폴리페놀 함량 3회 볶은 감초경엽에서 $3.38{\pm}0.12g/100g$으로 가장 높았다. 항돌연변이원성 평가에 있어서 직접변이원인 1-NP에 대해 높은 돌연변이 억제효과를 나타내었으며, 간접변이원인인 Trp-P-1, Trp-P-2, $AFB_1$, 2-AA에 대해서는 3번 볶은 감초경엽(GU-1)에서 가장 높은 돌연변이 억제효과를 나타냈다.

Keywords

References

  1. Ames, B.N. and D.M. Maron. 1983. Revised methods for the S. typhimurium mutagenicity test. Mut. Res. 113:173-215. https://doi.org/10.1016/0165-1161(83)90010-9
  2. Biondi D.M., C. Rocco and G. Ruberto. 2005. Dihydrostilbene derivatives from Glycyrrhira glabra leaves. J. Nat. Prod. 68:1099-102. https://doi.org/10.1021/np050034q
  3. Cheigh, H.S and C.Y. Lee. 1993. Antioxidative and antimutagenic characteristics of melanoidin related products. J. Korean Soc. Food Sci. Nutr. 22:246-252.
  4. Chon, S.U., C.H. Bae and S.C. Lee. 2012. Antioxidant and cytotoxic potentials of methanol extracts from Taraxacum officinale F. H. Wigg. at different plant parts. Korean J. Plant Res. 25:232-239. https://doi.org/10.7732/kjpr.2012.25.2.232
  5. Carriere, V, I. Waziers, Y.A. Courtois, J.P. Leroux and P.H. Beaune. 1992. Cytochrome P450 induction and mutagenicity of 2-aminoanthracene (2-AA) in rat liver and gut. Mut. Res. 268:11-20. https://doi.org/10.1016/0027-5107(92)90077-F
  6. Dashwood, R., T. Negishi, H. Hayatsu, V. Breinholt, J. Hendricks and G. Bailey. 1998. Chemopreventive properties of chlorophylls towards aflatoxin B1: a review of the antimutagenicity and anticarcinogenicity data in rainbow trout. Mutat. Res. 399:245-53. https://doi.org/10.1016/S0027-5107(97)00259-5
  7. Eaton, D.L. and E.P. Gallagher. 1994. Mechanism of aflatoxin carcinogenesis. Annu. Rev. Pharmacol. Toxicol. 34:135-12. https://doi.org/10.1146/annurev.pa.34.040194.001031
  8. Fukui, H., K. Goto and Tabata M. 1998. Two antimicrobial flavanones from the leaves of Glycyrrhiza glabra. Chem. Pharmacol. Bull. 36:4174-6.
  9. Halvorsen, B.L., K. Holte, M.C.W. Myhrsted, I. Barikmo, E. Hvattum and S.F. Remberg. 2002. A systematic screening of total antioxidants in dietary plants. J. Nutr. 132:461-471.
  10. Hayashi H, M. Yasuma, N. Hiraoka, Y. Ikeshiro, H. Yamamoto, E. Yesilada, E. Sezik, G. Honda and M. Tabata. 1996. Flavonoid variation in the leaves of Glycyrrhiza glabra. Phytochemistry 42:701-4. https://doi.org/10.1016/0031-9422(96)89776-7
  11. Hwang, C.R., S.H. Oh, H.Y. Kim, S.H. Lee, I.G. Hwang, Y.S. Shin, J.S. Lee and H.S. Jeong. 2011. Chemical composition and antioxidant activity of Deoduk (Codonopsis lanceolata) and Doragi (Platycodon grandiflorum) according to temperature. J. Korean Soc. Food Sci. Nutr. 40:798-803. https://doi.org/10.3746/jkfn.2011.40.6.798
  12. Kim, N.J., Y.H. Jin and N.D. Hong. 1995. Studies on the processing of Crude durge(IV)-Physico-chemical transformation of glycyrrhizin in Glycyrrhizae radix by processing. Kor. J. Pharmacogn. 26:31-39.
  13. Kim, S.W., B.S. Tchai, S.C. Park and S.J. Kang. 1982. Antimutagenic activity of chlorophyll to direct- and indirect-acting mutagens and its contents on the vegetables. Korean J. Biochem. 14:1-7.
  14. Lee, J.H., K.R. Ze, D.H. Kim, J.Y. Park, Y.H. Shim, J.H. Kim, S. Lim, J.S. Shin, I.S. Kim, J.Y. Kim, S.H. Seong, S.Y. Jang, D.S. Kim and R.S. Seong. 2009. Analysis of liquiritigenin, an aglycone of liquiritin in licorice by high performance liquid chromatography. Kor. J. Pharmacogn. 40:309-314.
  15. Lee, J.R., M.J. Jo, S.M. Park, S.C. Kim and S.J. Park. 2010. Establishment of UPLC method for analysis of liquiritigenin and studies on the processing of licorice for enhancement of liquiritigenin content. Korean J. Oriental Medical Prescription 18:145-154.
  16. Lee, J.R., S.J. Park, Y.W. Kim, I.J. Choi, S.H. Byun. and S.C. Kim. 2011. Comparison of antimicrobial effects of corydalis tuber and processed corydalis tuber against propionibacterium acnes. J. Korean Oriental Medical Ophthalmology & Otolaryngology & Dermatology 24:17-26.
  17. Lim, M.R. and S.M. Kang. 2009. Improvement effect of Salicornia herbacea L. diet on the acne skin. J. East Asian Soc. Dietary Life. 19:750-760.
  18. Na, I.S., M.J. Park, C.H. Noh, J.W. Min, M.H. Bang and D.C. Yang. 2008. Production of flavonoid aglycone from Korean Glycyrrhizae radix by biofermentation process. Korean J. Oriental Physiology & Pathology 22:569-574.
  19. Okawa. M., J. Kinjo, T. Nohara and M. Ono. 2001. DPPH (1,1-diphenyl-2-picrylhydrazyl) radical scavenging activity of flavonoids obtained from some medicinal plants. Biol. Pharm. Bull. 24:1202-1205. https://doi.org/10.1248/bpb.24.1202
  20. Park, C.S., D.H. Kim and M.L. Kim. 2008. Biological activities of extracts from corni fructus, astragalus membranaceus and Glycyrrhiza uralensis. Kor. J. Herbology 23:93-101.
  21. Park, J.S., J.H. Lee and K,S. Bang. 2012. Evaluation of antioxidant capacity and antimutagen activity of bulbil extracts of the Dioscorea japonica Decaisne and Dioscorea batatas Decaisne. Korean J. Plant Res. 25:200-208. https://doi.org/10.7732/kjpr.2012.25.2.200
  22. Pederson, T.C. and J.S. Siak. 1981. The role of nitroaromatic compounds in the direct-acting mutagenicity of diesel particle extracts. J. Appl Toxicol. 1:54-60. https://doi.org/10.1002/jat.2550010203
  23. Pulido, R., L. Bravo and F. Saura-Calixto. 2000. Antioxidative activity of dietary polyphenols as determined by a modified ferric reducing/antioxidant power assay. J. Agric. Food Chem. 38:3396-3402.
  24. Rhim, T.J. and M.Y. Choi. 2011. The antioxidative effects of rhododendron brachycarpum extracts. Korean J. Plant Res. 24:456-460. https://doi.org/10.7732/kjpr.2011.24.4.456
  25. Singer. B. and D. Grunberger. 1983. Molecular Biology of Mutagens and Carcinogens. Plenum Press, New York, USA.
  26. Slinkard, K. and V.L. Singleton. 1977. Total phenol analysis: automation and comparison with manual methods. Am. J. Enol. Vitic. 28:49-55.
  27. Siracusa, L., A. Saija, M. Cristani, F. Cimino, M. D'Arrigo, D. Trombetta, F. Rao and G. Ruberto. 2011. Phytocomplexes from liquorice (Glycyrrhiza glabra L.) leaves - Chemical characterization and evaluation of their antioxidant, anti-genotoxic and anti-inflammatory activity. Fitoterapia 82:546-556 https://doi.org/10.1016/j.fitote.2011.01.009
  28. Weng, Y., C. Fang, R.J. Turesky, M. Behr, L.S. Kaminsky and X. Ding. 2007. Determination of the role of target tissue metabolism in lung carcinogenesis using conditional cytochrome P450 reductase-null mice. Cancer Res. 67:7825-7832. https://doi.org/10.1158/0008-5472.CAN-07-1006
  29. Weisburger, J.H. 1993. Heterocyclic amines in cooked foods: possible human carcinogens. Cancer Res. 53:2422-2424.
  30. Yen, G.C., L.C. Tsai and J.D. Lii. 1992. Antimutagenic effect of Maillard browning products obtained from amino acids and sugars. Chem. Toxicol. 30:127-32.

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