7-디하이드로콜레스테롤을 함유한 키토산 코팅 처리 Solid Lipid Nano-particle의 개발에 관한 연구 Development of Chitosan Coated Solid Lipid Nano-particles Containing 7-Dehydrocholesterol원문보기
불안정한 생리활성물질들은 외부 환경에 의해 빠르게 분해된다. 그러므로 이러한 물질들을 안정화시키기 위한 캡슐화 기술은 매우 중요하다. 비타민 $D_3$의 전구체인 7-디하이드로콜레스테롤(7-DHC)은 일반인의 표피 각화세포에서 열충격 단백질(Heat Shock Protein)의 발현을 단백질과 mRNA의 수준에서 증가시키는 것으로 알려졌다. 하지만 7-DHC의 국소용 피부 제제로의 이용은 낮은 용해도와 화학적 불안정성 때문에 이용이 제한되었다. 본 연구에서 7-DHC는 나노에멀젼(NE), 고형 지질 나노 입자 (SLN) 그리고 키토산이 코팅된 고형 지질 나노 입자(CASLN)에 봉입하였다. NE와 SLN은 지질의 용융점 이상의 온도에서 고압의 호모제나이져를 통과시켜 제조하였다. CASLN은 SLN 분산액에 키토산을 용액을 첨가하여 제조하였으며 양(+)의 제타전위를 나타내었다. NE, SLN, CASLN 속에서 7-DHC의 안정도를 각각의 온도조건에서 시간의 경과에 따라 확인하였다. 열분석과 X선 회절 분석은 지질의 결정화 정도를 확인하기 위해서 수행하였다. 그 결과, CASLN은 기존의 SLN보다 불안정한 7-DHC를 효과적으로 봉입함으로서 안정성을 개선시켰다.
불안정한 생리활성물질들은 외부 환경에 의해 빠르게 분해된다. 그러므로 이러한 물질들을 안정화시키기 위한 캡슐화 기술은 매우 중요하다. 비타민 $D_3$의 전구체인 7-디하이드로콜레스테롤(7-DHC)은 일반인의 표피 각화세포에서 열충격 단백질(Heat Shock Protein)의 발현을 단백질과 mRNA의 수준에서 증가시키는 것으로 알려졌다. 하지만 7-DHC의 국소용 피부 제제로의 이용은 낮은 용해도와 화학적 불안정성 때문에 이용이 제한되었다. 본 연구에서 7-DHC는 나노에멀젼(NE), 고형 지질 나노 입자 (SLN) 그리고 키토산이 코팅된 고형 지질 나노 입자(CASLN)에 봉입하였다. NE와 SLN은 지질의 용융점 이상의 온도에서 고압의 호모제나이져를 통과시켜 제조하였다. CASLN은 SLN 분산액에 키토산을 용액을 첨가하여 제조하였으며 양(+)의 제타전위를 나타내었다. NE, SLN, CASLN 속에서 7-DHC의 안정도를 각각의 온도조건에서 시간의 경과에 따라 확인하였다. 열분석과 X선 회절 분석은 지질의 결정화 정도를 확인하기 위해서 수행하였다. 그 결과, CASLN은 기존의 SLN보다 불안정한 7-DHC를 효과적으로 봉입함으로서 안정성을 개선시켰다.
Unstable cosmetic active ingredients could rapidly break down in chemical and photochemical process. Therefore, it has become a very important issue to encapsulate active ingredient for the stabilization. 7-Dehydrocholesterol (7-DHC), a precursor of vitamin $D_3$, has been shown to increa...
Unstable cosmetic active ingredients could rapidly break down in chemical and photochemical process. Therefore, it has become a very important issue to encapsulate active ingredient for the stabilization. 7-Dehydrocholesterol (7-DHC), a precursor of vitamin $D_3$, has been shown to increase levels of protein and mRNA for heat shock protein in normal human epidermal keratinocytes. However, topical dermal application of 7-DHC is restricted due to its poor solubility and chemical unstability. In this study, 7-DHC was incorporated into nano-emulsion (NE), solid lipid nano-particle (SLN), and chitosan coated solid lipid nano-particle (CASLN), respectively. In order to prepare NE and SLN dispersion, high-pressure homogenization at temperature above the melting point of lipid was used Hydrogenated lecithin and polysorbate 60 were used as stabilizer for NE and SLN. CASLN was prepared by high speed homogenizing after adding chitosan solution to the SLN dispersion and showed positively charged particle properties. Decomposition rate of 7-DHC in NE, SLN and CASLN was studied as a function of time at different temperature. Differential scanning calorimetry (DSC) and X-ray diffraction (XRD) studies were performed to characterize state of lipid modification. It appeared that CASLN is the most effective to stabilize 7-DHC and may be used for a useful topical dermal delivery system.
Unstable cosmetic active ingredients could rapidly break down in chemical and photochemical process. Therefore, it has become a very important issue to encapsulate active ingredient for the stabilization. 7-Dehydrocholesterol (7-DHC), a precursor of vitamin $D_3$, has been shown to increase levels of protein and mRNA for heat shock protein in normal human epidermal keratinocytes. However, topical dermal application of 7-DHC is restricted due to its poor solubility and chemical unstability. In this study, 7-DHC was incorporated into nano-emulsion (NE), solid lipid nano-particle (SLN), and chitosan coated solid lipid nano-particle (CASLN), respectively. In order to prepare NE and SLN dispersion, high-pressure homogenization at temperature above the melting point of lipid was used Hydrogenated lecithin and polysorbate 60 were used as stabilizer for NE and SLN. CASLN was prepared by high speed homogenizing after adding chitosan solution to the SLN dispersion and showed positively charged particle properties. Decomposition rate of 7-DHC in NE, SLN and CASLN was studied as a function of time at different temperature. Differential scanning calorimetry (DSC) and X-ray diffraction (XRD) studies were performed to characterize state of lipid modification. It appeared that CASLN is the most effective to stabilize 7-DHC and may be used for a useful topical dermal delivery system.
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제안 방법
However, this active material degraded with ease by the outer condition. In this study, 7-DHC was incorporated into CASLN and the kinetics of 7-DHC degradation investigated. The NE, SLN and CASLN containing 7-DHC were stored different temperatures (20℃, 45℃).
In this study, we prepared SLN loaded with 7-DHC as a means to improve its poor water solubility and chemical unstability. And chitosan coated solid lipid nano-particle (CASLN), positively charged SLN, was prepared by using the interactions between negatively charged SLN and cationic chitosan polymer.
To characterize state of lipid modification, DSC (Shi- madtu DSC 60, Japan) and XRD (Scintag XDS 2000, USA) analysis of bulk raw cetyl palmitate (CP) and lyophilized SLN were performed. DSC scan were recorded at heating rate rc/min, from 20℃ to 90℃.
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