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Retinol-encapsulated low molecular water-soluble chitosan nanoparticles.

机译:视黄醇包裹的低分子水溶性壳聚糖纳米颗粒。

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This aim of this study was to encapsulate retinol into chitosan nanoparticles and reconstitute it into aqueous solution. Retinol-encapsulated chitosan nanoparticles were prepared for application of cosmetic and pharmaceutical applications. Retinol-encapsulated chitosan nanoparticle has a spherical shape and its particle sizes were around 50-200 nm according to the drug contents. Particle size was increased according to the increase of drug contents. Solubility of retinol is able to increase by encapsulation into chitosan nanoparticles more than 1600-fold. It was suggested that retinol was encapsulated into chitosan nanoparticles by ion complex as a result of FT-IR spectra. Specific peak of chitosan at 1590 cm(-1) was divided to semi-doublet due to the electrostatic interaction between amine group of chitosan and hydroxyl group of retinol. At (1)H NMR spectra, specific peaks of retinol disappeared when retinol-encapsulated chitosan nanoparticles were reconstituted into D(2)O while specific peaks both ofretinol and chitosan appeared at D(2)O/DMSO (1/4, v/v) mixture. XRD patterns also showed that crystal peaks of retinol were disappeared by encapsulation into chitosan nanoparticles. Retinol-encapsulated nanoparticles were completely reconstituted into aqueous solution as same as original aqueous solution and zeta potential of reconstituted chitosan nanoparticles was similar to their original solution. At HPLC study, retinol was stably and efficiently encapsulated into chitosan nanoparticles.
机译:这项研究的目的是将视黄醇封装到壳聚糖纳米颗粒中,然后将其重构为水溶液。制备了视黄醇包封的壳聚糖纳米颗粒,用于化妆品和药物应用。视黄醇包裹的壳聚糖纳米颗粒为球形,根据药物含量,其粒径约为50-200 nm。粒度随着药物含量的增加而增加。视黄醇的溶解度可通过包封在壳聚糖纳米粒子中的方法提高1600倍以上。 FT-IR光谱表明,通过离子络合物将视黄醇封装在壳聚糖纳米颗粒中。由于壳聚糖的胺基与视黄醇的羟基之间存在静电相互作用,因此在1590 cm(-1)处的壳聚糖比峰被划分为半峰。在(1)H NMR谱图上,当视黄醇包封的壳聚糖纳米颗粒重构为D(2)O时,视黄醇的特定峰消失,而视黄醇和壳聚糖的特定峰均出现在D(2)O / DMSO(1/4,v / v)混合物。 XRD图谱还表明,视黄醇的晶体峰通过包封在壳聚糖纳米颗粒中而消失。与初始水溶液相同,视黄醇包封的纳米颗粒被完全重构成水溶液,并且重构的壳聚糖纳米颗粒的ζ电势与其原始溶液相似。在HPLC研究中,视黄醇被稳定有效地封装在壳聚糖纳米颗粒中。

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