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세라마이드 함유 에토좀의 물성과 피부흡수

Skin Absorption and Physical Property of Ceramide-added Ethosome

  • 현통일 (제주대학교 화학.코스메틱스학과) ;
  • 윤경섭 (제주대학교 화학.코스메틱스학과)
  • Hyeon, Tong-Il (Department of Chemistry & Cosmetics, Jeju National University) ;
  • Yoon, Kyung-Sup (Department of Chemistry & Cosmetics, Jeju National University)
  • 투고 : 2021.05.29
  • 심사 : 2021.06.21
  • 발행 : 2021.06.30

초록

바이오틴을 피부에 전달하기 위해 고압균질기를 사용하여 바이오틴과 세라마이드를 모두 함유하는 에토좀에 대하여 연구하였다. 바이오틴이 주된 성분으로 사용되었으며, 세라마이드 NP는 인지질 이중층의 지지체로 활용되었다. 바이오틴은 수용성 내부에 포획되었고, 세라마이드 NP는 에토좀의 이중층에 흡착되었다. 세라마이드 NP를 함유한 에토좀의 물성을 살펴보면 소포체의 크기는 80~130 nm, 다분산지수는 0.09~0.16, 제타 전위는 -40~-49 mV로 측정되었다. 세라마이드 NP가 없는 소포체의 크기는 124.80±1.46 nm, 다분산지수와 제타전위는 각각 0.088±0.018과 -45.48±1.27 mV이었다. 따라서 세라마이드 NP가 함유된 에토좀은 세라마이드 NP가 없는 에토좀에 비해 소포체의 물리적 특성이 개선됨을 알 수 있었다. 세라마이드 NP를 함유한 에토좀의 피부흡수율은 12시간 후 6.13~14.98%이었으며, 반면에 세라마이드 NP가 없는 에토좀의 피부흡수율은 7.08%이었다. 결론적으로 세라마이드 NP를 함유한 에토좀은 피부흡수 효율을 향상시킬뿐만 아니라 소포체의 안정성에도 긍정적인 영향을 미쳤다.

In order to delivery biotin to skin, ethosomes containing both biotin and ceramide were researched by using high pressure homogenizer. Biotin was utilized as a drug and ceramide NP was utilized as a supporter of bilayer. The biotin was entrapped in aqueous core, while ceramide NP was packed in the bilayer of the ethosomes. Looking at the physical properties of vesicles containing ceramide NP, the sized was 80~130 nm, the polydispersity index was 0.09~0.16, and the zeta potential was -40~-49 mV. In vesicles without ceramide NP, the size was 124.80±1.46 nm, and the zeta potential and polydispersity index were -45.48±1.27 mV and 0.088±0.018, respectively. Therefore, the ethosome with ceramide NP has improved physical properties of vesicles compared to the ethosome without ceramide NP. Skin absorption rates of ethosomes with ceramide NP were 6.13~14.98%, while skin absorption rate of ethosome without ceramide NP was 7.08% at 12 h. In conclusion, ethosomes containing ceramide NP not only improved the skin absorption efficiency, but had also a positive effect on the stability of vesicles.

키워드

과제정보

This research was supported by the 2021 scientific promotion program funded by Jeju National University.

참고문헌

  1. M. A. Bolzinger, S. Briancon, J. Pelletier, Y. Chevalier, "Penetration of drugs through skin, a complex rate-controlling membrane", Current Opinion in Colloid & Interface Science, Vol.17, No.3, pp. 156-165, (2012). https://doi.org/10.1016/j.cocis.2012.02.001
  2. H. Jeong, J. Yoo, H. S. Lee, J. H. Seo, W. B. Ko, "Nanotechnology application in cosmetics", KIC News, Vol.12, No.1, (2009).
  3. D. D. Verma, S. Verma, G. Blume, A. Fahr, "Particle size of liposomes influences dermal delivery of substances into skin", International Journal of Pharmaceutics, Vol.258, No.1-2, pp. 141-151, (2003). https://doi.org/10.1016/S0378-5173(03)00183-2
  4. G. M. El Maghraby, B. W. Barry, A. C. Williams, "Liposomes and skin: From drug delivery to model membranes", European Journal of Phamaceutical Sciences, Vol.34, No.4-5, pp. 203-222, (2008). https://doi.org/10.1016/j.ejps.2008.05.002
  5. A. Laouini, C. J. Maalej, I. L. Blouza, S. Sfar, C. Charcosset, H. Fessi, "Preparation, characterization and applications of liposomes: State of the art", Journal of Colloid Science and Biotechnology, Vol.1, No.2, pp. 147-168, (2012). https://doi.org/10.1166/jcsb.2012.1020
  6. J. S. Dua, A. C. Rana, A. K. Bhandari, "Liposome: Methods of preparation and applications", International Journal of Phamaceutical Sciences and Research, Vol.3, No.2, pp. 14-20, (2012).
  7. E. Touitou, N. Dayan, L. Bergelson, B. Godin, M. Eliaz, "Ethosome-novel vesicular carriers for enhaced delivery: Characterization and skin penetration properties", Journal of Controlled Release, Vol.65, No.3, pp. 403-418, (2000). https://doi.org/10.1016/S0168-3659(99)00222-9
  8. L. Cui, Y. Jia, Z. W. Cheng, Y. Gao, G. L. Zhang, J. Y. Li, C. F. He, "Advancements in the maintenance of skin barrier/skin lipid composition and the involvement of metabolic enzymes", Journal of Cosmetic Dermatology, Vol.15, No.4, pp. 549-558, (2016). https://doi.org/10.1111/jocd.12245
  9. M. Rabionet, K. Gorgas, R. Sandhoff, "Ceramide synthesis in the epidermis", Biochimica et Biophysica Acta, Vol.1841, No.3, pp. 422-434, (2014). https://doi.org/10.1016/j.bbalip.2013.08.011
  10. A. Sugiura, T. Nomura, A. Mizuno, G. Imokawa, "Reevaluation of the nonlesional dry skin in atopic dermatitis by acute barrier disruption: an abnormal permeability barrier homeostasis with defective processing to generate ceramide", Archieves of Dermatological Research, Vol.306, No.5, pp. 427-440, (2014). https://doi.org/10.1007/s00403-013-1430-x
  11. R. M. Trueb, "Serum biotin levels in women complaining of hair loss", International Journal of Trichology, Vol.8, No.2, pp. 73-77, (2016). https://doi.org/10.4103/0974-7753.188040
  12. S. J. Yang, K.-S. Yoon, "Study of the stability of biotin encapsulated by nano liposome", Journal of Society Cosmetic Science Korea, Vol.46, No.2, pp. 133-145, (2019).
  13. S. Kaddaha, N. Khreich, F. Kaddah, C. Charcosset, H. Greige-Gerges, "Cholesterol modulates the liposome membrane fluidity and permeability for a hydrophilic molecule", Food and Chemical Toxicology, Vol.113, pp. 40-48, (2018). https://doi.org/10.1016/j.fct.2018.01.017
  14. J. M. Lopez-Pinto, M. L. GonzalezRodriguez, A. M. Rabasco, "Effect of cholesterol and ethanol on dermal delivery from DPPC liposomes", International Journal of Pharmaceutics, Vol.298, No.1, pp. 1-12, (2005). https://doi.org/10.1016/j.ijpharm.2005.02.021
  15. M. Brandl, D. Bachmann, M. Drechsler, K. H. Bauer, "Liposome preparation by a new high pressure homogenizer Gaulin Micron Lab 40", Drug Development and Industrial Pharmacy, Vol.16, No.14, pp. 2167-2191, (1990). https://doi.org/10.3109/03639049009023648
  16. R. B. Rodriguez, M. Sabes, "Factors involved in the production of liposomes with a high-pressure homogenizer", International Journal of Pharmaceutics, Vol.213, No.1-2, pp. 175-186, (2001). https://doi.org/10.1016/S0378-5173(00)00661-X
  17. K. Y. Chae, S. S. Kwon, S. N. Park, "A study on Nano-emulsion for enhanced transdermal delivery of Hippophae rhamnoides leaf extract", Applied Chemistry for Engineering, Vol.24, No.3, pp. 260-265, (2013).
  18. G Gregoriadis, Liposome Technology 2 nd Edition, pp. 50-65, CRC press, (1993).
  19. N. Ostrowsky, "Liposome size measurements by photon correlation spectroscopy", Chemistry and Physics of Lipids, Vol.64, No.1-3, pp. 45-56, (1993). https://doi.org/10.1016/0009-3084(93)90057-A
  20. M. N. Trainer, P. J. Freud, E. M. Leonardo, "High-concentration submicron particle size distribution by dynamic light scattering", American Laboratory, Vol.24, No.11, pp. 34-39, (1992).
  21. Z. Zhang, Y. Wo, Y. Zhang, D. Wang, R. He, H. Chen, D. Cui, "In vitro study of ethosome penetration in human skin and hypertrophic scar tissue", Nanomedicine, Vol.8, No.6,, pp. 1026-1033, (2012). https://doi.org/10.1016/j.nano.2011.10.006
  22. H. J. Gwak, B. S. Jin, "Preparation and characterization of EGCG entrapped ethosome", The Korean Society of Industrial and Engineering Chemistry, Vol.18, No.2, pp. 130-135, (2007).
  23. C. K. Kim, M. H. Min, K. H. Min, W. R. Lah, B. J. Lee, Y. B. Kim, "Synthesis of n-stearyl actobionamide (N-SLBA) and preparation of neo-galactosylated liposome", Yakhak Hoeji, Vol.36, No.2, pp. 159-166, (1992).
  24. A. Overbye, A. Holsaeter, M. Fusser, N. Skalko-Basnet, T. Inversen, M. Lyngass Torgersen, T. Sonstevold, O. Engebarraten, K. Flatmark, G. M. Maelandsmo, T. Skotland, K. Sandvig, "Ceramide-containing liposomes with doxorubicin: time and cell-dependent effect of C6 and C12 ceramide", Oncotarget, Vol.8, No.44, pp. 76921-76934, (2017). https://doi.org/10.18632/oncotarget.20217