References
- Oh, S. J. (2008) BAES. Trademark 0115076.
- Barry, B. W. (2001) Novel mechanism and devices to enable successful transdermal drug delivery. Eur. J. Pharm. Sci. 14: 101-114. https://doi.org/10.1016/S0928-0987(01)00167-1
- Kim, S. (1993) Liposomes as carriers of cancer chemotherapy: current status and future prospects. Drugs. 46: 618-638. https://doi.org/10.2165/00003495-199346040-00004
- Booser, D. and G. Hortobagyi (1994) Anthracycline antibiotics in cancer therapy: focus on drug resistance. Drugs. 47: 223-258. https://doi.org/10.2165/00003495-199447020-00002
- Barber, R. and P. Shek (1993) Pharmaceutical Particulate Carriers. pp. 1-20. In: A. Rolland (eds.). Liposomes as a topical acular drug delivery system. Marcel Dekker, NY, USA.
- Wong, M. and T. Thompson (1982) Aggregation of dipamitoylphosphatidylcholine vesicles. Biochemistry. 21: 4133-4139. https://doi.org/10.1021/bi00260a033
- Vora, B., A. J. Khopade, and N. K. Jain (1998) Proniosome based transdermal delivery of levonorgestrel for effective contraception. J. Control. Rel. 54: 149-165. https://doi.org/10.1016/S0168-3659(97)00100-4
- Yoshioka, T., B. Sternberg, and A. T. Florence (1994) Preparation and properties of vesicles (niosomes) of sorbitan monoesters (Span 20, 40, 60 and 80) a sorbitan triester (Span 85). Int. J. Pharm. 105: 1-6. https://doi.org/10.1016/0378-5173(94)90228-3
-
Liu, T., R. Guo, W. Hua, and J. Qui (2007) Structure of hemoglobin in PEG 6000/Tween 80/Span 80/
$H_2O$ noisome system. Colloids and surface A: Physicochem. Eng. Aspects. 293: 255-261. https://doi.org/10.1016/j.colsurfa.2006.07.053 - Knepp, V. M., R. S. Hinz, F. C. Szoka, and R. H. Guy (1998) Controlled drug release from a novel liposomal delivery system. I. Investigation of transdermal potential. J. Control. Rel. 5: 211-221.
- Knepp, V. M., F. C. Szoka, and R. H. Guy (1990) Controlled drug release from a novel liposomal delivery system. II. Transdermal delivery characteristics. J. Control. Rel. 12: 25-30. https://doi.org/10.1016/0168-3659(90)90179-W
- Fang, J. Y., C. H. Hong, W. T. Chiu, and Y. Y. Wang (2001) Effect of liposome and niosomes on skin permeation of enoxacin. Int. J. Pharm. 219: 61-72. https://doi.org/10.1016/S0378-5173(01)00627-5
- Cevc, G. (1992) Liposome Technology. 2nd ed., pp. 1-36. In: G. Gregoriadis (eds.). Lipid Properties as a Basis for the Modelling and Design of Liposome Membranes. CRC-Press, Boca Raton, FL.
- G. Cevc (1995) Handbook of Physics vol. I. pp. 441-466. In: R. Lipowsky and E. Sackmann (eds.). Material Transport Across Permeability Barriers by Means of Lipid Vesicles. Elsevier Science, NY, USA.
- Kaul, R. (1976) Kinetics of the anti-staphylococcal activity of bakuchiol in vitro. Arzneimittelforschung. 26: 486-489.
- Katsura, H., R. I. Tsukiyama, A. Suzuki, and M. Kobayashi (2001) In vitro antimicrobial activities of bakuchiol against oral microorganisms. Antimicrob Agents Chemother. 45: 3009-3013. https://doi.org/10.1128/AAC.45.11.3009-3013.2001
- Chaudhuri, R., K. Bojanowski, and F. Marchio (2011) Retinol and retinol-like compounds in skin care. Expression Cosmetique. 227-233.
- Chaudhuri, R. and F. Marchio (2011) Bakuchiol in the management of acne affected skin. Cosmetics & Toiletries. 126: 502-510.
- Lee, S. J. & Kim, J. H. (1993) Emulsive cosmetic composition of micromultiple lamella small ball structure and preparation thereof. KR Patent 0115076.
- So, K. S. & Park, D. L. (1993) Micromultiple sphere composition containing cosmetic component with skin activity and its preparation. KR Patent 0107609.
- Han, J. W. and J. C. Lim (1999). Study on solubilization of Bunker-C by nonionic surfactans. Applied Chemistry. 3: 324-327.
- Laia, C. A. T., W. Brown, M. Almgren, and S. M. B. Costa (2000) Light scattering study of water-in-oil AOT microemusions with poly(oxy)ethylene. Langumuir. 16: 465-470. https://doi.org/10.1021/la990684s
- Lehner, D., H. Lindner, and O. Glatter (2000) Determination of the translational and rotational diffusion coefficients of rodlike particles using depolarized dynamic light scattering. Lagumuir. 16: 1689-1695. https://doi.org/10.1021/la9910273
Cited by
- Antifungal Activity Substance from Psoralea corylifolia seeds against Rhizoctonia solani AG-4 vol.22, pp.4, 2018, https://doi.org/10.7585/kjps.2018.22.4.356