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Enhancement of Anti-inflammatory Activities of Fermented Scutellaria baicalensis Extracts using Lactobacillus rhamnosus

유산균 발효를 통한 황금 추출물의 항염증 효과 증진

  • Choi, Woo Seok (Department of Medical Biomaterials Engineering, Kangwon National University) ;
  • Kwon, Hee-Souk (Hankook Cosmo Cosmetics Co.) ;
  • No, Ra Hwan (Department of Food Science and Engineering, Seowon University) ;
  • Choi, Geun Pyo (Department of Food Processing and Bakery, Gangwon Provincial College) ;
  • Lee, Hyeon Yong (Department of Food Science and Engineering, Seowon University)
  • 최우석 (강원대학교 생물의소재공학과) ;
  • 권희석 (한국코스모화장품) ;
  • 노라환 (서원대학교 식품공학과) ;
  • 최근표 (강원도립대학 식품가공제과제빵과) ;
  • 이현용 (서원대학교 식품공학과)
  • Received : 2013.05.10
  • Accepted : 2013.06.26
  • Published : 2013.12.31

Abstract

This study was performed to investigate the anti-inflammatory activities of fermented Scutellaria baicalensis extracts using Lactobacillus rhamnosus. The extracts were WE (water extract at $100^{\circ}C$ for 24 h), EE (70% ethanol extract at $60^{\circ}C$ for 24 h), FWE (fermented and water extract at $60^{\circ}C$ for 24 h), FEE (fermented and 70% ethanol extract at $60^{\circ}C$ for 24 h). The cytotoxicity of the extracts was in the range of 11.2 ~ 15.6 % at 1.0 mg/mL concentratioin. The FEE showed the lowest activity at 1.0 mg/mL concentratioin. Compared to the WE, hyaluronidase inhibitory activity contents in the FEE increased to 9.2% at 1.0 mg/mL concentratioin. Nitric oxide production of WE, EE, FWE and FEE at 1.0 mg/mL concentration was mesured as 7.6, 7.9, 6.9, 6.4 ${\mu}M$, respectively. $PGE_2$ secretion of the human fibroblast of the FEE were lower than 810 pg/mL. Our results suggested that the extracts from fermentation process after 70% ethanol extraction had relatively high anti-inflammatory activities and that the Scutellaria baicalensis could be more extracted in FEE than others.

본 연구에서는 소염, 항염 작용이 뛰어난 작물로 알려진 황금을 유산균인 Lactobacillus rhamnosus를 이용해 발효를 통한 황금의 추출물에 대한 추출공정별 항염증 효과 증진을 측정하였다. 추출 공정으로는 일반열수추출(WE), 일반 70% 에탄올 추출(EE), L. rhamnosus 발효 열수 추출(FWE), L. rhamnosus 발효 70% 에탄올 추출(FEE)로 나누어 진행하였다. 각각의 추출 공정별 수율 측정결과 발효 70% 에탄올 추출이 25.9%로 최대 수율을 얻었으며, 발효 열수 추출, 일반 70% 에탄올 추출, 일반 열수 추출 순으로 높은 수율을 얻었다. 추출 공정별 세포독성 측정에서 발효 황금 에탄올 추출물의 농도가 1.0 mg/mL일때 9.8%로 가장 낮은 세포독성을 나타냈으며, 일반 에탄올 추출의 경우 22.6%로 가장 높은 세포 독성을 가졌다. Hyaluronidase 저해 효과는 발효 황금 에탄올 추출물의 농도가 1.0 mg/mL에서 최대 46.8%의 hyaluronidase 저해 활성을 보였으며, NO 생성량 및 $PGE_2$ 생성량 측정도 1.0 mg/mL 농도의 발효 황금 에탄올 추출물이 각각 36%의 최대 NO 생성량 감소 및 810 pg/mL의 낮은 $PGE_2$ 값을 나타냈다. 따라서 황금의 항염증 관련 효과를 위한 최적 추출 공정으로는 발효를 통한 황금의 70% 에탄올 추출 수율이 가장 높았으며, 이에 따라 항염증 관련 생리활성 물질이 보다 더 많이 용출됨을 확인할 수 있다.

Keywords

References

  1. R. Zamora, Y. Vodovtz, and T. R. Billiar, Inducible nitric oxide synthase and inflammatory diseases, Mol. Med., 6, 347 (2000).
  2. C. A. Janeway Jr., Approaching the asymptote? evolution and revolution in immunology, Cold Spring Harb Symp Quant Biol., 54, 1 (1989). https://doi.org/10.1101/SQB.1989.054.01.003
  3. M. Broncel, Antiatherosclerotic properties of flavones from the roots of Scutellaria baicalensis georgi, Wiad. Lek., 60, 294 (2007).
  4. B. P. Burnett, Q. Jia, Y. Zhao, and R. M. Levy, A medicinal extract of Scutellaria baicalensis and Acacia catechu acts as a dual inhibitor of cyclooxygenase and 5-lipoxygenase to reduce inflammation, J. Med. Food, 10, 442 (2007). https://doi.org/10.1089/jmf.2006.255
  5. W. Z. Song, Studies on the resource of the chinese herb Scutellaria baicalensis georgi, Acta. Pharm. Sin., 16, 139 (1981).
  6. H. J. Yoon and Y. S. Park, Effects of scutellaria baicalensis water extract on lipid metabolism and antioxidant defense system in rats fed high fat diet, J. Korean Soc. Food. Sci. Nutr., 39(2), 219 (2010). https://doi.org/10.3746/jkfn.2010.39.2.219
  7. Y. C. Shen, W. F. Chiou, Y. C. Chou, and C. F. Chen, Mechanisms in mediating the anti-inflammatory effects of baicalin and baicalein in human leukocytes, Eur. J. Pharmacol., 465, 171 (2003). https://doi.org/10.1016/S0014-2999(03)01378-5
  8. E. N. Kim, J. Y. Paek, Y. H. Kim, and M. D. Han, Antibacterial activities of a aqueous extract form scutellaria baicalensis against pathogenic bacteria, Journal of Natural Sciences of Soonchunhyang University, 14(1), 11 (2008).
  9. S. H. Hwang and C. H. Park, Preservation of cosmetics by ethanol extract of Scutellaria baicalensis GEORGE, Korean Journal of biotechnology and bioengineering, 24, 347 (2009).
  10. J. H. Park, H. S. Lee, H. C. Mun, D. H. Kim, N. S. Seong, H. G. Jung, J. K. Bang, and H. Y. Lee, Effect of ultrasonification process on enhancement of immuno-stimulatory activity of ephedra sinica staph and fubus coreanus Miq, Korean Journal of Biotech nology and Bioengineering, 19(2), 113 (2004).
  11. B. M. Kong, M. J. Park, J. W. Min, H. B. Kim, S. H. Kim, S. Y. Kim, and D. C. Yang, Physico-chemical characteristics of white, fermented and red ginseng extracts, J. Ginseing Res., 32, 238 (2008). https://doi.org/10.5142/JGR.2008.32.3.238
  12. B. S. Jeon, J. W. Park, B. K. Kim, H. K. Kim, T. S. Jung, J. R. Hahm, D. R. Kim, Y. S. Cho, and J. Y. Cha, Fermented mushroom milk supplemented dietary fiber prevents the onset of obesity and hypertriglyceridemia in Otsuka Long-Evans Tokushima Fatty (OLETF) rats, Diabetes Obes. Metab., 7, 709 (2005). https://doi.org/10.1111/j.1463-1326.2005.00456.x
  13. H. S. Kim and J. S. Ham, Antioxidative ability of lactic acid bacteria, Korean J. Food Sci. Ani. Resour., 23(2), 186 (2003).
  14. K. M. Sekine, T. Yoida, M. Saito, M. Kuboyama, T. kawashima, and Y. Hashimoto, A new morphologically characterized cell wall preparation (whole peptidoglycan) from Bifidobacterium infantis with a higher efficacy on the regression of an established tumor in mice, Cancer Res., 4, 1300 (1985).
  15. J. M. Park, J. Y. Lee, T. S. Park, S. J. Hyun, H. H. Kim, Y. J. Cho, O. J. Kwon, A. R. Son, D. S. Kim, and B. J. An, A study on the cosmeceutical activities of Prunus sargentii R., Journal of the Korean society for Applied Biological Chemistry, 51, 70 (2008).
  16. L. C. Green, D. A. Wagner, J. Glogowski, P. L. Skipper, J. S. Wishnok, and S. R. Tannenbaum, Analysis of nitrate, nitrite, and [15N]nitrate in biological fluids, Anal. Biochem., 126(1), 131 (1982). https://doi.org/10.1016/0003-2697(82)90118-X
  17. H. Y. Kwak, D. H. Kim, H. Y. Lee, and N. I. Baek, A Large scale isolation of flavonoids from the roots of scutellaria baicalensis, Institute of Life Sciences & Resources, 26, 47 (2007).
  18. M. H. Jung, S. S. Kim, J. S. Kim, H. J. Lee, G. P. Choi, and H. Y. Lee, Skin whitening and skin immune activities of different parts of acer mono and acer okamotoanum, Journal of Korean Forest Society, 99(4), 470 (2010).
  19. H. S. Jung, S. H. Oh, S. S. Kim, M. H. Jung, W. Y. Choi, Y. C. Seo, G. P. Choi, J. C. Kim, and H. Y. Lee, Enhancement of immune activities of peptides from asterias amurensis using a nano-encapsulation process, Korean J. Food Sci. Technol., 42(4), 424 (2010).
  20. Y. J. Cho, Charactrization of biological activities of rehmannia glutinosa extracts, Journal of Life Science, 22(7), 943 (2012). https://doi.org/10.5352/JLS.2012.22.7.943

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