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Anti-inflammatory Effect of Ishige foliacea in RAW 264.7 Cells

넓패추출물에 의한 RAW 264.7 세포에서의 항염효과

  • Joonghyun Shim (Department of Biohealth-Convergence, Seoul Women's University)
  • 심중현 (서울여자대학교 바이오헬스융합학과)
  • Received : 2023.10.17
  • Accepted : 2023.12.21
  • Published : 2024.03.30

Abstract

This study was carried out to identify the anti-inflammatory effects of Ishige foliacea (I. foliacea) extract on skin using RAW 264.7 cells. The anti-inflammatory effects of I. foliacea extract on RAW 264.7 cells were assessed by cell viability assay, mRNA expressions, and nitric oxide (NO)/prostaglandin E2 (PGE2) productions. The anti-inflammatory effects of I. foliacea extract were elucidated by analysis of IL-1α/IL-1β/IL-6/TNFα gene expressions and PGE2/NO production. Quantitative real-time polymerase chain reaction showed that I. foliacea extract decreased the gene expression levels of iNOS/COX2/IL-1α/IL-1β and IL-6. Furthermore, PGE2/NO production also revealed that I. foliacea extract exhibited anti-inflammatory properties. These results suggest that I. foliacea extract is an anti-inflammatory compound. It could be a potent cosmeceutical material for anti-inflammatory effects. Further studies on the anti-inflammatory mechanisms of broadleaf extracts are expected to help identify pharmacological mechanisms related to inflammation in addition to cosmeceuticals.

본 연구는 RAW 264.7 세포를 이용하여 넓패추출물(Ishige foliacea, I. foliacea)의 피부 항염 효과를 확인하고자 하였다. RAW 264.7 세포에 대한 넓패추출물의 항염증 효과는 세포 생존력 분석, mRNA 발현 및 산화질소(NO)/프로스타글란딘 E2 (PGE2) 생성을 통해 확인하였다. 넓패추출물의 항염증 효과는 IL-1α/IL-1β/IL-6/TNFα mRNA 발현 및 NO/PGE2 생성을 분석하여 규명하였고, 정량적 실시간 중합효소 연쇄반응을 통해 넓패추출물은 iNOS/COX2/IL-1α/IL-1β 및 IL-6의 mRNA 발현을 감소시키는 것을 확인하였다. 또한 PGE2와 NO 생성의 비교를 통해 넓패추출물이 항염증 효과가 있음을 확인하였다. 넓패추출물의 항염 효과를 바탕으로 코스메슈티컬 소재로 활용될 수 있는 가능성을 확인하였다. 넓패추출물의 항염증 메커니즘에 대한 후속 연구를 바탕으로 코스메슈티컬뿐만 아니라 염증과 관련된 약리학적인 메커니즘 발굴에도 도움이 될 것으로 보인다.

Keywords

References

  1. J. Albina and J. Reichner, Nitric oxide in inflammation and immunity, New Horiz., 3(1), 46 (1995). 
  2. H. J. Kim and Y. C. Chang, Suppression of TNF-α-induced inflammation by extract from different parts of Moringa in HaCaT cells, J. Life Sci., 22(9), 1254 (2012). 
  3. S. Akira and K. Takeda, Toll-like receptor signaling, Nat. Rev. Immunol., 4(7), 499 (2004). 
  4. P. F. Gomez, M. H. Pilllinger, M. Attur, N. Marjanovic, M. Dave, J. Park, C. O. Binagham, H. Al-Mussawir, and S. B. Abramson, Resolution of inflammation:prostaglandin E2 dissociates nuclear trafficking of individual NF-kappa B subunits (p65, p50) in stimulated rheumatoid synovial fibroblasts, J. Immunol., 175(10), 6924 (2005). 
  5. C. Gabay, Interleukin-6 and chronic inflammation, Arthritis Res. Ther., 8(Suppl 2), S3 (2006). 
  6. J. J. Triel, J. H. E. Arts, H. Muijser, and C. F. Kuper, Allergic inflammation in the upper respiratory tract of the rat upon repeated inhalation exposure to the contact allergen dinitrochlorobenzene (DNCB), Toxicol., 269(1), 73 (2010). 
  7. H. J. Lee, B. Y. Sim, J. W. Bak, and D. H. Kim, Effect of Gami-sopungsan on inflammatory and DNCB-induced dermatitis in NC/Nga in mice, Korean J. Oriental Physiology & Pathology, 28(2), 146 (2014). 
  8. N. J. Horwood, T. H. Page, J. P. McDaid, C. D. Palmer, J. Campbell, T. Mahon, F. M. Brennan, D. Webster, and B.M. Foxwell, Bruton's tyrosine kinase is required for TLR2 and TLR4-induced TNF, but not IL-6, production, J. Immunol., 176(6), 3635 (2006). 
  9. N. Hirohashi and D. C. Morrison, Low-dose lipopolysaccharide (LPS) pretreatment of mouse macrophages modulates LPS-dependent interleukin-6 production in vitro, Infect. Immun., 64(3), 1011 (1996). 
  10. C. H. Cho, M. Y. Kim, G. H. Youm, S. Kim, Y. K. Park, and S. H. Lee, Advanced glycation end-products inhibitory activities and renoprotective effects of Ishige foliacea ethanolic extract, J. Chitin Chitosan, 25(3), 134 (2020). 
  11. B. O. Cho, H. W. Ryu, Y. K. So, C. H. Jin, M. W. Byun, W. G. Kim, and I. Y. Jeong, Ishige sinicola extracts induce apoptosis via activation of a caspase cascade in human HeLa cell, J Korean Soc Food Sci Nutr, 41(7), 901 (2012). 
  12. M. S. Kim, K. J. Kwon, M. J. Lee, S. M. Ahn, and H. Y. Sohn, Evaluation of the antimicrobial activities of 35 seaweed extracts against pathogenic bacteria and Candida sp, Korean J. Microbiol. Biotechnol., 40(2), 144 (2012). 
  13. S. M. Ahn, Y. K. Hong, G. S. Kwon, and H. Y. Sohn, Evaluation of antioxidant and nitrite scavenging activity of seaweed extracts, Journal of Life Science, 21(4), 576 (2011). 
  14. J. H. Lim, K. S. Jung, J. S. Lee, E. S. Jung, D. K. Kim, Y. S. Kim, Y. W. Kim, and D. H. Park, The study on antimicrobial and antifungal activity of the wild seaweeds of Jeju island, J. Soc. Cosmet. Sci. Korea, 34(3), 201 (2008). 
  15. S. H. Cha, G. N. Ahn, S. J. Heo, K. N. Kim, K. W. Lee, C. B. Song, S. K. Cho, and Y.J. Jeon, Screening of extracts from marine green and brown algae in Jeju for potential marine angiotensin-I converting enzyme (ACE) inhibitory activity, J Korean Soc Food Sci Nutr, 35(3), 307 (2006). 
  16. Ishige foliacea voucher CNUK PI046 cytochrome oxidase subunit III (cox3) gene, partial cds; mitochondrial. GenBank: FJ427587.1 
  17. Ishige foliacea voucher CNUK PI046 ribulose-1, 5-bisphosphate carboxylase/oxygenase large subunit (rbcL) gene, partial cds; plastid. GenBank: FJ427692.1 
  18. J. H. Kim, M. J. Kim, K. B. W. R. Kim, S. H. Pa, K. S. Cho, G. U Kim, X. Xiaotong, D. H. Lee, G. R. Park. and D.H. Ahn, Anti-inflammatory effects of Ishige sinicola ethanol extract in SLP-induced RAW 264.7 cell and mouse model, Korean J. Food Preserv., 24(8), 1149 (2017). 
  19. A. N. Paunel, A. Dejam, S. Thelen, M. Kirsch, M. Horstjann, P. Gharini, M. Murtz, M. Kelm, H. de Groot, V. Kolb-Bachofen, and C. V Suschek, Enzyme-independent nitric oxide formation during UVA challenge of human skin: characterization, molecular sources, and mechanisms, Free Radic. Biol. Med., 38(5), 606 (2005). 
  20. K. J. Yun, J. Y. Kim, J. B. Kim, K. W. Lee, S. Y. Jeong, H. J. Park, H. J. Jung, Y. W. Cho, K. Yun, and K. T. Lee, Inhibition of LPS-induced NO and PGE2 production by asiatic acid via NF-kB inactivation in RAW 264.7 macrophages: Possible involvement of the IKK and MAPK pathways, Internation. Immunopharmacol., 8(3), 431 (2008). 
  21. S. G. Harris, J. Padilla, L. Koumas, D. Ray, and R. P. Phipps, Prostaglandins as modulators of immunity, Trends Immunol., 23(3), 144 (2002). 
  22. A. S. M. Noman, N. Koide, F. Hassan, I. I-E-Khuda, J. Dagvadorj, G. Tumurkhuu, S. Islam, Y. Naiki, T. Yoshida, and T. Yokochi, Thalidomide inhibits lipopolysaccharide-induced tumor necrosis factor-a production via downregulation of MyD88 expression, Innate Immun., 15(1), 33 (2009). 
  23. P. C. Lord, L. M. Wilmoth, S. B. Mizel, and C.E. McCall, Expression of interleukin-1 alpha and beta genes by human blood polymorphonuclear leukocytes, J. Clin Invest., 87(4), 1312 (1991). 
  24. I. Roitt, J. Brostoff and D. Male, Immunology sixth edition, p119,128,441, Mosby, London, U.K. (2002). 
  25. Y. Zhang, B. F. Ramos, and B. A. Jakschik, Neutrophil recruitment by tumor necrosis factor from mast cells in immune complex peritonitis, Science, 258(5090), 1957 (1992). 
  26. H. S. Talwar, C. E. Griffiths, G. J. Fisher, T. A. Hamilton, and J. J. Voorhees, Reduced type I and type III procollagens in photodamaged adult human skin, J. Invest. Dermatol., 105(2), 285 (1995). 
  27. J. Kim, C. W. Lee, E. K. Kim, S. J. Lee, N. H. Park, H. S. Kim, H. K. Kim, K. Char, Y. P. Jang, and J. W. Kim, Inhibition effect of Gynura procumbens extract on UV-B-induced matrix-metalloproteinase expression in human dermal fibroblasts, J. Enthnopharmacol., 137(1), 427 (2011). 
  28. T. B. L. Kirkwood, Understanding the odd science of aging, Cell, 120(4), 437 (2005).