DOI QR코드

DOI QR Code

A Study on the Effectiveness of In Vitro as a Cosmetic Material of Sericin Originated from Silkworm Kochi

누에고치에서 유래된 세리신(Sericin)의 화장품 소재로서 In Vitro 효능 연구

  • Hyun-Ji Kwon (Advanced Translational Medicine, Konkuk University) ;
  • Jihye Lee (Daegu Haany University Industry Academic Cooperation Foundation) ;
  • Eun-mi Jung (Department of Pharmaceutical Engineering, Daegu haany University) ;
  • Eunhong Lee (Department of Pharmaceutical Engineering, Daegu haany University) ;
  • Jinhan Park (Division of Biotechnology and Convergence, College of Cosmetics and Pharm, Daegu Haany University) ;
  • Sung-Eum Oh (Garam of Nature) ;
  • Sanghyeok Park (Garam of Nature) ;
  • Ji Wook Jung (Division of Biotechnology and Convergence, College of Cosmetics and Pharm, Daegu Haany University)
  • 권현지 (건국대학교 일반대학교원 첨단중개의학과) ;
  • 이지혜 (대구한의대학교 산학협력단) ;
  • 정은미 (대구한의대학교 일반대학원 제약공학과) ;
  • 이은홍 (대구한의대학교 일반대학원 제약공학과) ;
  • 박진한 (대구한의대학교 화장품제약대학 바이오산업융합학부) ;
  • 오성음 (가람오브네이쳐) ;
  • 박상혁 (가람오브네이쳐) ;
  • 정지욱 (대구한의대학교 화장품제약대학 바이오산업융합학부)
  • Received : 2023.01.12
  • Accepted : 2023.02.26
  • Published : 2023.02.28

Abstract

Sericin is a protein extracted from the cocoon and has many health benefits. This study was conducted to evaluate the anti-wrinkle and anti-inflammatory activity of sericin derived from cocoon as a cosmetic material. The antioxidant activity of sericin was measured by DPPH and ABTS assays. In addition, cell viability was confirmed in Raw 264.7 cells, which are macrophages, and the anti-inflammatory effect of sericin was investigated using the inflammatory response induced using lipopolysaccharide (LPS). It shows that sericin has antioxidant activity and can be an excellent material for anti-aging and anti-inflammatory cosmetics.

세리신은 누에고치에서 추출한 단백질로 많은 건강상의 이점을 가지고 있다. 본 연구는 화장품 소재로서 누에고치에서 유래된 세리신 표준품의 항주름 활성 및 항염증 활성을 평가하기 위해 수행되었다. 세리신의 항산화 효과는 DPPH 및 ABTS 측정법에 의해 측정되었다. 또한 대식세포인 Raw 264.7 cell에서의 세포 생존율을 확인하였으며, lipoplyscaccharide를 이용하여 유도된 염증반응을 이용하여 세리신의 항염증 효과를 조사하였다. 그 결과 세리신은 DPPH, ABTS에서 항산화 활성을 보였으며 세포 독성을 가지지 않은 1,000 ㎍/mL의 농도에서 NO를 억제하였다. 종합하여 세리신은 항산화 활성을 가지며 항노화 및 항염증 화장품의 우수한 소재가 될 수 있음을 보여준다.

Keywords

Acknowledgement

본 연구는 2022년도 경상북도 및 경북테크노파크의 바이오 코스메틱 생태계 조성사업의 지원을 받아 수행한 연구입니다(과제번호-코스메틱22-01).

References

  1. B. G. Lee, J. H. Kim, S. G. Gyeong, C. E. Lee, "Study on biological activities of extracts for cosmeceutical development from lagerstroemia indica L. Branch", Korean Journal of Plant Resources, Vol.27, No.1 pp. 29-34, (2014).  https://doi.org/10.7732/KJPR.2014.27.1.029
  2. Y. J. Chon, H. S. Jung, H. S. Kim, J. H. Lee, S. H. Moh, "The effect on roots extract from potentilla chinensis as cosmeceutical material", Journal of. Applied Biological Chemistry, Vol.59, No.1 pp. 13-17, (2016).  https://doi.org/10.3839/jabc.2016.004
  3. I. C. Um, "Recent research trend in the structure and properities of silk sericin", Journal of Sericultural Entomological Science, Vol.55, No.2 pp. 44-53, (2019). 
  4. K. H. Lee, M. K. Kim, H. J. Oh, J. Y. Lee, J. Y. Lee, "Enzymatic Hydrollysis of Silk Sericin and Its Anti-oxidative Effect", Journal of the Socienty of Cosmetic Scientists of Korea, Vol.35, No.2 pp. 135-141, (2009). 
  5. K. G. Lee, J. H. Yeo, Y. W. Lee, H. Y. Kweon, J. H. Kim, "Bioactive and Skin-compatible Properties of Silk Sericin", Journal of Sericultural and Entomological Science, Vol.43, No.2 pp. 109-115, (2001). 
  6. Y. G. Zhang, "Applications of natural silk protein sericin in biomaterials", Biotechnology Advances, Vol.20, No.2 pp. 91-100, (2002).  https://doi.org/10.1016/S0734-9750(02)00003-4
  7. P. Aramwit, T. Siritientong, T. Srichana, "Potential application of silk sericin, a matural protein from textile industry by-products", Waste Management Research, Vol.30, No.3 pp. 217-224, (2012).  https://doi.org/10.1177/0734242X11404733
  8. W. H. Wang, W. S. Lin, C. H. Shih, C. Y. Chen, S. H. Kuo, W. L. Li, Y. S. Lin, "Functionality of Silk Cocoon (Bombyx mori L.) Sericin Extracts Obtained through Kigh-Temperature Hydrothermal Method", Materials, Vol.14, No.18 5314, (2021). 
  9. H. Biganeh, M. Kabiri, Y. Zeynalpourfattahi, R. M. Costa Brancalhao, M. Karimi, M. R. Shams Ardekani, R. Rahimi, "Bombyx mori cocoon as promissing pharmacological agent: A review of ethnopharmacology chemistry, and biological activities", Heliyon, Vol.8, No.9 pp. 10496, (2022). 
  10. J. Liu, L. Shi, Y. Deng, M. Zou, B. Cai, Y. Song, Z. Wang, L. Wang, "Silk sericin-based materials for biomedical applications", Biomaterials, Vol.287, pp. 121638, (2022). 
  11. P. Aramwit, S. Kanokpanont, T. Nakpheng, T. Srichana, "The effect of Sericin from various extraction methods on cell viability and collagen producation", Journal of Molecular Sciences, Vol.11, No.5 pp. 2200-2211, (2010).  https://doi.org/10.3390/ijms11052200
  12. S. Nayak, T. Dey, D. Naskar, S. C. Kundu, "The promotion of ossenointegration of titanium surfaces by coating with silk protein sericin", Biometerials, Vol.34, No.12 pp. 2855-2864, (2013).  https://doi.org/10.1016/j.biomaterials.2013.01.019
  13. K. Jena, J. P. Pandey, R. Kumari, A. K. Sinha, G. P. Singh, "Free radical scavenging potential of sericin obtained from various ecoraces of tasar cocoons and its cosmeceuticals implication", Jounal of Biological Macromolecules, Vol.120, pp. 255-262, (2018).  https://doi.org/10.1016/j.ijbiomac.2018.08.090
  14. N. Kato, S. Sato, A. Yamanaka, H. Yamada, N. Fuwa, M. Nomura, "Silk protein, sericin, inhibitis lipid peroxidation and tyrosinase activity", Biosci Biotechnol Bichem, Vol.62, No.1 pp. 145-147, (1998).  https://doi.org/10.1271/bbb.62.145
  15. J. B. Fan, L. P. Wu, L. S. Chen, X. Y. Mao, F. Z. Ren, "Antioxidant activities of silk sericin from silkworm bombyx mori", Journal of food biochemistry, Vol.33, pp. 74-88, (2009).  https://doi.org/10.1111/j.1745-4514.2008.00204.x
  16. M. S. Blois, "Antioxidant determinations by the use of a stable free radical", Nature, Vol.181, pp. 1199-1200, (1958).  https://doi.org/10.1038/1811199a0
  17. R. Re, N. Pellegrini, A. Proteggente, A. Pannala, M. Yang, C. Rice-Evans, "Antioxidant activity applying an improved ABTS radical cation decolorization assay", Free Radical Biology Medicine, Vol.26, No.9-10 pp. 1231-1237, (1999).  https://doi.org/10.1016/S0891-5849(98)00315-3
  18. Richard J. P. Cannell, S. J. Kellam, M. Ania, J. M. Walker, "Results of a large scale screen of microalgae for the production of protease inhibitors", Planta Medica., Vol.54, No.1 pp. 10-14, (1988).  https://doi.org/10.1055/s-2006-962319
  19. E. M. El-Fakharany, G. M. Abu-Elreesh, E. A. Kamoun, S. Zaki, D. A. Abd-EL-Haleem, "In vitro assessment of the bioactivities of sercin protein extracted from a bacterial silk-like biopolymer", RSC Adv., Vol. 10, pp. 5098-5107, (2020).  https://doi.org/10.1039/C9RA09419A
  20. K. Jena, J. P. Pandey, Ruchi Kumari, A. K. Sinha, V. P. Gupta, G. P. Singh, "Tasar silk fiber waste sericin: New source for anti-elastase, anti-tyrosinase and anti-oxidant compounds", International Journal of Biological Macromolecules, Vol. 114, pp. 1102-1108, (2018). https://doi.org/10.1016/j.ijbiomac.2018.03.058