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用于亲水性药物或活性化合物包封与递送的单分散生物相容性磷脂囊泡的微流体制备。

Microfluidics fabrication of monodisperse biocompatible phospholipid vesicles for encapsulation and delivery of hydrophilic drug or active compound.

作者信息

Kong Feng, Zhang Xu, Hai Mingtan

机构信息

School of Materials Science and Engineering, University of Science and Technology Beijing , Beijing 100083, People's Republic of China.

出版信息

Langmuir. 2014 Apr 8;30(13):3905-12. doi: 10.1021/la404201m. Epub 2014 Mar 24.

Abstract

We encapsulate the hydrophilic anti-cancer drug doxurubicin hydrochloride (DOX) with about 94% drug encapsulation efficiency, either alone or with nanomagnetite, in monodisperse biocompatible phospholipid vesicles. Glass capillary microfluidics is used to generate monodisperse water in oil in water (w/o/w) double-emulsion templates with a core-shell structure by using a mixture of liquid unsaturated phospholipids and powdered saturated phospholipid. This combination would overcome the low transition temperature of unsaturated powdered phospholipid and the solubility limitation of saturated phospholipid, as well as improving the fabrication of stable monodisperse phospholipid vesicles. The double-emulsion droplet is controlled from 50 to 200 μm according to different flow rates, and the final phospholipid vesicles are retained after a solvent removal step by dewetting. DOX-loaded phospholipid vesicles show sustained release compared with free DOX water solution. The in vitro cell viability of 100 μg/mL phospholipid vesicles on HeLa or MCF-7 cells after 24 h incubation at 310 K is above 90%, confirming the excellent biocompatibility of the phospholipid vesicles. These biocompatible phospholipid vesicles are promising oral drug delivery vehicles for biomedical applications and magnetic resonance imaging contrast agents for biomedical diagnosis.

摘要

我们将亲水性抗癌药物盐酸多柔比星(DOX)单独或与纳米磁铁矿一起包裹在单分散生物相容性磷脂囊泡中,药物包裹效率约为94%。玻璃毛细管微流控技术用于通过使用液态不饱和磷脂和粉末状饱和磷脂的混合物来生成具有核壳结构的单分散水包油包水(w/o/w)双乳液模板。这种组合将克服不饱和粉末状磷脂的低转变温度和饱和磷脂的溶解度限制,同时改善稳定单分散磷脂囊泡的制备。根据不同流速,双乳液液滴可控制在50至200μm之间,最终的磷脂囊泡在通过去湿去除溶剂的步骤后得以保留。与游离DOX水溶液相比,负载DOX的磷脂囊泡显示出持续释放。在310K下孵育24小时后,100μg/mL磷脂囊泡对HeLa或MCF - 7细胞的体外细胞活力高于90%,证实了磷脂囊泡具有优异的生物相容性。这些生物相容性磷脂囊泡有望成为用于生物医学应用的口服药物递送载体以及用于生物医学诊断的磁共振成像造影剂。

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