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双膦酸盐衍生脂质体控制胶原/羟基磷灰石支架的药物释放。

Bisphosphonate-derivatized liposomes to control drug release from collagen/hydroxyapatite scaffolds.

机构信息

Department of Chemical and Materials Engineering, Faculty of Engineering, University of Alberta, Edmonton, Alberta, Canada T6G 2G6.

出版信息

Mol Pharm. 2011 Aug 1;8(4):1025-34. doi: 10.1021/mp200028w. Epub 2011 May 19.

Abstract

A drug delivery system was developed by combining composite scaffolds made up of collagen and hydroxyapatite (Col/HA) with bisphosphonate (BP)-derivatized liposomes. The Col/HA scaffold was prepared by a freeze-drying method to yield a porous scaffold. The liposomes were composed of distearoylphosphocholine, cholesterol, distearoylphosphoethanolamine-poly(ethylene glycol) (DSPE-PEG), and a bone-binding bisphosphonate (BP) attached to the DSPE-PEG (DSPE-PEG-BP). By taking advantage of the specific interaction between the liposomal BP and the HA incorporated into the scaffold, the BP-decorated liposomes (BP-liposomes) were shown to display a strong affinity to Col/HA scaffolds. Three different model drugs, carboxyfluorescein (CF), doxorubicin (DOX), and lysozyme (LYZ) were entrapped in liposomes; there were no differences in drug release from the liposomes whether the liposomes were BP decorated or not. Whereas unencapsulated drugs and drugs encapsulated in PEG-liposomes displayed rapid release from the scaffolds, the drugs entrapped in BP-liposomes showed a slower release from the Col/HA scaffolds. We conclude that the proposed system can prolong the in situ residence of model drugs and has the potential to provide a sustained drug release platform in bone regeneration and repair.

摘要

通过将由胶原蛋白和羟磷灰石(Col/HA)组成的复合支架与双膦酸盐(BP)衍生的脂质体结合,开发了一种药物传递系统。Col/HA 支架通过冷冻干燥法制备,得到多孔支架。脂质体由二硬脂酰基磷脂酰胆碱、胆固醇、二硬脂酰基磷脂酰乙醇胺-聚乙二醇(DSPE-PEG)和附着在 DSPE-PEG 上的骨结合双膦酸盐(BP)组成。利用脂质体 BP 与支架中掺入的 HA 之间的特异性相互作用,证明 BP 修饰的脂质体(BP-脂质体)对 Col/HA 支架具有很强的亲和力。将三种不同的模型药物,羧基荧光素(CF)、阿霉素(DOX)和溶菌酶(LYZ)包封在脂质体中;无论脂质体是否被 BP 修饰,从脂质体中释放药物没有差异。未包封的药物和包封在 PEG-脂质体中的药物从支架中快速释放,而包封在 BP-脂质体中的药物从 Col/HA 支架中缓慢释放。我们得出的结论是,所提出的系统可以延长模型药物的原位停留时间,并有可能为骨再生和修复提供一个持续的药物释放平台。

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