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Inhibition of Nitric Oxide Production and Hyaluronidase Activities from the Combined Extracts of Platycodon grandiflorum, Astragalus membranaceus, and Schisandra chinensis

길경, 황기와 오미자 혼합추출물의 NO 억제활성과 Hyaluronidase 억제활성 효과

  • Received : 2013.02.18
  • Accepted : 2013.04.01
  • Published : 2013.06.30

Abstract

In this study, the optimal extraction conditions for three medicinal herbs as functional sources against inflammatory and arthritic diseases were developed. Traditional medicinal herbs were screened for their inhibition of hyaluronidase (HAse) activity and nitric oxide (NO) synthesis. For the screening of anti-inflammatory properties, ethanolic extracts of 53 species of traditional medicinal herb were examined. We confirmed that Astragalus membranaceus (A.R.), Schisandra chinensis (S.F.), and Platycodon grandiflorum (P.G.) inhibit NO production. For extraction from all three herbs simultaneously, an ethanol concentration of 95%, a 1:2:1 mixture ratio, and at 50 rpm mixing speed, for over 12 h and at $30^{\circ}C$ was the best condition for optimal extract yield and NO inhibition effects. HAse inhibition from the three herb extraction was three fold higher than single samples. The ethanol extracts were fractionated with various solvents (n-hexane, chloroform, ethyl acetate, n-butanol, and water). The ethyl acetate-soluble fraction of the herb mixture showed the highest extract yield (13%) and NO inhibition effects (73%). In conclusion, this study provides experimental evidence that a mixture of P.G., A.R., and S.F. could be used as a source of antioxidant ingredients in the food industry.

본 연구에서는 천연식물자원으로부터 항염증, 항산화 및 항관절염에 활성을 갖는 유용한 물질을 검색하기 위해 문헌 조사 및 기존의 연구결과를 통하여 선정된 53가지의 생약재로부터 NO와 HAse(hyaluronidase)의 억제활성 여부를 측정하였다. 측정 결과 억제효과가 우수하다고 확인된 황기(Astragalus membranaceus)와 오미자(Schisandra chinensis), 길경(Platycodon grandiflorum)을 최종 시료로 선정하였고, 이를 단독으로 사용하기보다는 유효성분의 항염증 및 항산화 효능에 대한 상승효과를 알아보기 위하여 혼합추출물의 최적조건을 확인하였다. 각 소재들을 1:2:1로 혼합한 혼합추출물에서 다양한 추출조건에 따라 단일 생약재 추출물에 비해 2배에서 4배까지의 수율 증가를 보였으며, NO 억제활성 효과도 증가한 것을 확인할 수 있었다. 수율과 NO 억제활성을 고려할 경우 혼합추출물의 최적 추출 조건은 황기, 오미자, 길경의 혼합비율 1:2:1, 추출시간 12시간, 추출온도 $30^{\circ}C$, 혼합 속도 50 rpm, 추출용매로 ethyl acetate이었다. 위의 최적 조건을 적용한 혼합추출물은 HAse 저해 활성 실험에서 최초 추출물(not grinded, 95% EtOH, 24시간, 실온, 0 rpm)보다 약 16% 정도의 저해 상승효과가 나타났다. 이는 길경과 황기, 오미자의 상승작용 때문으로 사료된다. 이를 통해 황기와 오미자, 길경의 혼합추출물이 항염증, 항산화 및 항관절염에 활성을 갖는 유용한 물질로 사용 가능할 것이라 사료된다.

Keywords

References

  1. Lee HJ, Kim NY, Jang MK, Son HJ, Kim KM, Sohn DH, Lee SH, Ryu JH. 1999. A sesquiterpene, dehydrocostus lactone, inhibits the expression of inducible nitric oxide synthase and TNF-${\alpha}$ in LPS-activated macrophages. Planta Med 65: 104-108. https://doi.org/10.1055/s-1999-13968
  2. Lee BG, Kim SH, Zee OP, Lee KR, Lee HY, Han JW, Lee HW. 2000. Suppression of inducible nitric oxide synthase expression in RAW 264.7 macrophages by two ${\beta}$-carboline alkaloids extracted from Melia azedarach. Eur J Pharmacol 406: 301-309. https://doi.org/10.1016/S0014-2999(00)00680-4
  3. Chiou WF, Chou CJ, Chen CF. 2001. Camptothecin suppresses nitric oxide biosynthesis in RAW 264.7 macrophages. Life Sci 69: 625-635. https://doi.org/10.1016/S0024-3205(01)01154-7
  4. Seo WG, Pae HO, Oh GS, Kim NY, Kwon TO, Shin MK, Chai KY, Chung HT. 2001. The aqueous extract of Rhodiola sachalinensis root enhances the expression of inducible nitric oxide synthase gene in RAW264.7 macrophages. J Ethnopharmacol 76: 119-123. https://doi.org/10.1016/S0378-8741(01)00220-3
  5. deRojas-Walker T, Tamir S, Ji H, Wishnok JS, Tannenbaum SR. 1995. Nitric oxide induces oxidative damage in addition to deamination in macrophage DNA. Chem Res Toxicol 8: 473-477. https://doi.org/10.1021/tx00045a020
  6. Szabó C, Zingarelli B, O'Connor M, Salzman AL. 1996. DNA strand breakage, activation of poly(ADP-ribose) synthetase, and cellular energy depletion are involved in the cytotoxicity of macrophages and smooth muscle cells exposed to peroxynitrite. Proc Natl Acad Sci U S A 93: 1753-1758. https://doi.org/10.1073/pnas.93.5.1753
  7. Kim SW. 2009. The effects of Lactobacillus plantarum cultured in Platycodi Radix decoction on the expression of NO and TNF-${\alpha}$ in mouse macrophage RAW 264.7 cell line. MS Thesis. Kyung Hee University, Seoul, Korea.
  8. Anderson AJ. 1968. The effect of anti-inflammatory drugs on the enzymic activity of a rat liver granular fraction which increases vascular permeability. Biochem Pharmacol 17: 2253-2264. https://doi.org/10.1016/0006-2952(68)90032-4
  9. Cameron E, Pauling L, Leibovitz B. 1979. Ascorbic acid and cancer: a review. Cancer Res 39: 663-681.
  10. Kakegawa H, Matsumoto H, Satoh T. 1985. Activation of hyaluronidase by metallic salts and compound 48/80, and inhibitory effect of anti-allergic agents on hyaluronidase. Chem Pharm Bull (Tokyo) 33: 642-646. https://doi.org/10.1248/cpb.33.642
  11. Kakegawa H, Matsumoto H, Satoh T. 1992. Inhibitory effects of some natural products on the activation of hyaluronidase and their anti-allergic actions. Chem Pharm Bull (Tokyo) 40: 1439-1442. https://doi.org/10.1248/cpb.40.1439
  12. Fujitani N, Sakaki S, Yamaguchi Y, Takenaka H. 2001. Inhibitory effects of microalgae on the activation hyaluronidase. J Appl Phycol 13: 489-492. https://doi.org/10.1023/A:1012592620347
  13. Reissig JL, Storminger JL, Leloir LF. 1995. A modified colorimetric method for the estimation of N-acetylamino sugars. J Biol Chem 217: 959-966.
  14. Elson LA, Morgan W. 1933. A colorimetric method for the determination of glucosamine and chondrosamine. Biochem J 27: 1824-1828.
  15. Lee YM, Choi SI, Lee JW, Jung SM, Park SM, Heo TR. 2005. Isolation of hyaluronidase inhibitory component from the roots of Astraglus membranaceus Bunge (Astragali Radix). Food Sci Biotechnol 14: 263-267.
  16. Choi SI, Lee YM, Heo TR. 2003. Screening of hyaluronidase inhibitory and free radical scavenging activity in vitro of traditional herbal medicine extracts. Korean J Biotechnol Bioeng 18: 282-288.
  17. Kim EJ, Oh OJ, Lee SK, Yang KS. 2001. Inhibitory effect of Astragali Radix on COX-2 activity. Kor J Pharmacogn 32: 311-315.
  18. Kim YP, Lee EB, Kim SY, Li D, Ban HS, Lim SS, Shin KH, Ohuchi K. 2001. Inhibition of prostaglandin E2 production by platycodin D isolated from the root of Platycodon grandiflorum. Planta Med 67: 362-364. https://doi.org/10.1055/s-2001-14317
  19. Lee KJ, You HJ, Park SJ, Kim YS, Chung YC, Jeong TC, Jeong HG. 2001. Hepatoprotective effects of Platycodon grandiflorum on acetaminophen-induced liver damage in mice. Cancer Lett 174: 73-81. https://doi.org/10.1016/S0304-3835(01)00678-4
  20. Choi CY, Kim JY, Kim YS, Chung YC, Seo JK, Jeong HG. 2001. Aqueous extract isolated from Platycodon grandiflorum elicits the release of nitric oxide and tumor necrosis factor-${\alpha}$ from murine macrophages. Int Immunopharm 1:1141-1151. https://doi.org/10.1016/S1567-5769(01)00047-9
  21. Kim HK, Choi JS, Yoo DS, Choi YH, Yon GH, Hong KS, Lee BH, Kim HJ, Kim EJ, Park BK, Jeong YC, Kim YS, Ryu SY. 2007. HPLC analysis of saponins in Platycodi Radix. Kor J Pharmacogn 38: 192-196.

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