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基于微流控技术的同时包封亲水性和疏水性药物的脂质体制造。

Microfluidics based manufacture of liposomes simultaneously entrapping hydrophilic and lipophilic drugs.

机构信息

Aston Pharmacy School, Life and Health Sciences, Aston University, Birmingham B4 7ET, UK.

Strathclyde Institute of Pharmacy and Biomedical Sciences, University of Strathclyde, 161 Cathedral Street, Glasgow G4 0RE, UK.

出版信息

Int J Pharm. 2016 Nov 30;514(1):160-168. doi: 10.1016/j.ijpharm.2016.09.027.

Abstract

Despite the substantial body of research investigating the use of liposomes, niosomes and other bilayer vesicles for drug delivery, the translation of these systems into licensed products remains limited. Indeed, recent shortages in the supply of liposomal products demonstrate the need for new scalable production methods for liposomes. Therefore, the aim of our research has been to consider the application of microfluidics in the manufacture of liposomes containing either or both a water soluble and a lipid soluble drug to promote co-delivery of drugs. For the first time, we demonstrate the entrapment of a hydrophilic and a lipophilic drug (metformin and glipizide respectively) both individually, and in combination, using a scalable microfluidics manufacturing system. In terms of the operating parameters, the choice of solvents, lipid concentration and aqueous:solvent ratio all impact on liposome size with vesicle diameter ranging from ∼90 to 300nm. In terms of drug loading, microfluidics production promoted high loading within ∼100nm vesicles for both the water soluble drug (20-25% of initial amount added) and the bilayer embedded drug (40-42% of initial amount added) with co-loading of the drugs making no impact on entrapment efficacy. However, co-loading of glipizide and metformin within the same liposome formulation did impact on the drug release profiles; in both instances the presence of both drugs in the one formulation promoted faster (up to 2 fold) release compared to liposomes containing a single drug alone. Overall, these results demonstrate the application of microfluidics to prepare liposomal systems incorporating either or both an aqueous soluble drug and a bilayer loaded drug.

摘要

尽管有大量研究调查了脂质体、非离子体和其他双层囊泡在药物传递中的应用,但这些系统向许可产品的转化仍然有限。事实上,最近脂质体产品的供应短缺表明需要新的可扩展的脂质体制备方法。因此,我们的研究旨在考虑微流控技术在制备含有水溶性和脂溶性药物的脂质体中的应用,以促进药物的共递释。我们首次证明了使用可扩展的微流控制造系统分别以及组合包封亲水性和疏水性药物(分别为二甲双胍和格列吡嗪)。就操作参数而言,溶剂的选择、脂质浓度和水相/溶剂比都会影响脂质体的大小,囊泡直径从 90nm 到 300nm 不等。就药物载量而言,微流控生产促进了在约 100nm 的小囊泡中对水溶性药物(加入的初始量的 20-25%)和双层嵌入药物(加入的初始量的 40-42%)的高载量,药物的共载量对包封效率没有影响。然而,将格列吡嗪和二甲双胍共载于同一脂质体配方中确实会影响药物释放曲线;在这两种情况下,在一个制剂中同时存在两种药物都会导致比单独含有一种药物的脂质体更快(高达 2 倍)释放。总的来说,这些结果表明可以应用微流控技术制备包含水溶性药物和双层加载药物的脂质体系统。

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