• Title/Summary/Keyword: coencapsulation

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Coencapsulation of L-Ascorbic Acid and α-Tocopherol in Ethosomes and Their Properties (친수성 L-ascorbic acid와 소수성 α-tocopherol을 모두 포집하는 ethosome의 특성)

  • Lim, Yoon Mi;Jun, Yoon Kyung;Park, Seyeon;Jin, Byung Suk
    • Applied Chemistry for Engineering
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    • v.25 no.4
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    • pp.368-373
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    • 2014
  • Coencapsulation of hydrophilic L-ascorbic acid and hydrophobic ${\alpha}$-tocopherol in ethosome vesicles was attempted and their properties were investigated in this study. The size of vesicles decreased with increasing concentration of L-ascorbic acid solution encapsulated in ethosome. The vesicle size and encapsulation efficiency of ethosomes increased slightly when ${\alpha}$-tocopherol was added into the HPC-forming liquid crystalline membrane of ethosome. However, the vesicle size increased highly and the encapsulation efficiency decreased abruptly at mixing ratios above 25 wt% due to the formation of an imperfect liquid crystalline structure within a vesicle membrane. It was observed that antioxidant activity was maintained for 5 weeks at $40^{\circ}C$ when L-ascorbic acid and ${\alpha}$-tocopherol were coencapsulated in ethosome. The L-ascorbic acid in ethosome was stable compared to that in aqueous solution under UV radiation.

Development of Coencapsulating Technology for the Production of Chitosanoligosaccharides

  • Lee, Ki-Sun;Chio, Myeong-Rak;Lim, Hyun-Soo
    • Biotechnology and Bioprocess Engineering:BBE
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    • v.5 no.5
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    • pp.345-349
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    • 2000
  • To easily separate chitosanoligosaccharides by size exclusion, an coencapsulating technology of substrate and enzyme was developed. The membrane was composed of alginate and a divalent cation such as calcium. Chitosan and chitosanase were enveloped in this membrane and the product released to medium by size exclusion. The capsule was stabilized in a 2% acetic acid solution (pH 5.0) containing 0.145 M CaCO$_3$. The leakage of substrate caused by the agitation speed was controlled by increasing alginate and CaCO$_3$concentrations. The lower limit of the alginate concentration and the agitation speed were 0.5% and 49rpm, respectively. Membrane thickness and capsule diameter were 10$\mu\textrm{m}$ and 2.5mm, respectively. By TLC analysis, the composition of chitosanoligosaccharides were mainly 3-6 mers. The molecular weight distribution of the released oligosaccharides ranged from 262 to 3624 Da by GPC.

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Antimicrobial Activities of Ethosome-Encapsulated Palmitoyl Tripeptide (Ethosome에 캡슐화된 Palmitoyl Tripeptide의 항균효과)

  • Lee, Yeon-Jung;Lee, Yun Sub;Jin, Byung Suk
    • Applied Chemistry for Engineering
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    • v.25 no.6
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    • pp.570-576
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    • 2014
  • Palmitoyl tripeptide (M330) showed higher antimicrobial activities than methyl paraben or phenoxy ethanol through minimum inhibitory concentration (MIC) test. However, when the M330 was added into cosmetic formulation, white precipitates formed due to the electrostatic interaction between M330 and carbopol (carboxy vinyl polymer) as a thickener in cosmetics, and the viscosity of cosmetics decreased sharply. Also, the antimicrobial activities of M330 in cosmetics became lower than those of methyl paraben or phenoxy ethanol. Thus, the encapsulation of M330 in ethosome vesicle was attempted in order to recover the declined antimicrobial activities of M330 in cosmetics and prevent the precipitates from forming. When ethosome-encapsulated M330 was added into cosmetics, the precipitates did not form, and the decrease in the viscosity of cosmetics was not large compared to the addition of unencapsulated M330. Challenge tests showed that antimicrobial activities against gram negative bacteria were improved by the encapsulation of M330, but the encapsulation was not effective against gram positive bacteria and fungus. A combination of M330 with EDTA showed synergistic inhibitory potential against C. albicans. After coencapsulation of M330 and EDTA in ethosome, antimicrobial activities proved to be higher than those of unencapsulated M330 and EDTA.

Molecular Weight Distribution Inside and Outside Capsules Using Coencapsulating Technology (공동캡슐화를 이용한 Capsule 내외부의 분자량 분포)

  • 이기선;임현수
    • KSBB Journal
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    • v.16 no.4
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    • pp.321-326
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    • 2001
  • The change of molecular weight inside and outside a capsule produced using coencapsulating technology was investigated. Chitosan and chitosanase were enveloped in this membrane and product released was a loaded the medium by the principle of size exclusion. The leakage of substrate corresponding to the agitation speed was controlled by adjusting the alginate and CaCO$_3$ concentrations. The optimal condition of alginate concentration and agitation speed were 0.5% and 40rpm, respectively. Membrane thickness and capsules diameter were 10 $\mu$m and approx. 3.0 - 1.5 mm, respectively. Molecular weight difference by concentration and alginate viscosity were of little significance. In accordance with the molecular weight distribution versus enzyme concentration relationship, low concentration of enzyme produced high molecular weight oligosaccharides. At a 1.5 mm capsule size the product diffusion rate to outer surface highest. The molecular weight distribution of the released oligosaccharides was ranged from 1000 to 6000 Da. More than 80% of the initial activity of encapsulated enzyme retained after 8hrs of reaction.

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