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单分散液滴填充的可生物降解微胶囊

Monodisperse liquid-filled biodegradable microcapsules.

作者信息

Berkland Cory, Pollauf Emily, Varde Neel, Pack Daniel W, Kim Kyekyoon Kevin

机构信息

Department of Chemical and Petroleum Engineering, 2030 Becker Dr., Lawrence, Kansas 66047, USA.

出版信息

Pharm Res. 2007 May;24(5):1007-13. doi: 10.1007/s11095-006-9197-9. Epub 2007 Mar 20.

Abstract

PURPOSE

Encapsulation of liquids into biodegradable polymer microcapsules has been a challenging task due to production limitations stemming from solution viscosity, phase stabilization, molecular localization, and scalable production. We report an extension of Precision Particle Fabrication (PPF) technology for the production of monodisperse liquid-filled microcapsules containing an oil or aqueous core and contrast these results to double-walled microspheres.

MATERIALS AND METHODS

PPF technology utilizes a coaxial nozzle to produce a liquid core jet surrounded by a polymer annular jet, which is further encompassed by a non-solvent carrier stream, typically 0.5% wt/vol polyvinyl alcohol in water. Jet diameters are controlled by the volumetric flow rate of each phase. The compound jet is then disrupted into uniform core/shell droplets via a controllable acoustic wave and shell material is hardened by solvent extraction.

RESULTS

Monodisperse polymeric microcapsules demonstrated a narrow size distribution and the formation of a continuous shell leading to efficient encapsulation of various liquid cores. The intermingling of core and shell phases and the localization of different molecular probes (fluorescent dyes and fluorescently labeled proteins) to the core or shell phase provided additional evidence of phase separation and molecular partitioning, respectively. We also demonstrate the pulsatile release of bovine serum albumin encapsulated in an aqueous core.

CONCLUSIONS

PPF technology provided exceptional control of the overall size and shell thickness of microcapsules filled with various types of oil or water. This technique may enable advanced delivery profiles of pharmaceuticals or nutraceuticals.

摘要

目的

由于溶液粘度、相稳定性、分子定位和可扩展生产等方面的限制,将液体封装到可生物降解的聚合物微胶囊中一直是一项具有挑战性的任务。我们报告了精密颗粒制造(PPF)技术的扩展,用于生产含有油相或水相核心的单分散液体填充微胶囊,并将这些结果与双壁微球进行对比。

材料与方法

PPF技术利用同轴喷嘴产生被聚合物环形射流包围的液芯射流,该射流进一步被非溶剂载流包围,通常是水中0.5%重量/体积的聚乙烯醇。射流直径由各相的体积流速控制。然后通过可控声波将复合射流破碎成均匀的核/壳液滴,并通过溶剂萃取使壳材料硬化。

结果

单分散聚合物微胶囊显示出窄的尺寸分布,并形成连续的壳,从而实现对各种液芯的有效封装。核相和壳相的混合以及不同分子探针(荧光染料和荧光标记蛋白)在核相或壳相中的定位分别提供了相分离和分子分配的额外证据。我们还展示了封装在水相核心中的牛血清白蛋白的脉冲释放。

结论

PPF技术对填充各种类型油或水的微胶囊的整体尺寸和壳厚度提供了出色的控制。该技术可能实现药物或营养保健品的先进递送模式。

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