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Porous Magnesium Aluminometasilicate Tablets as Carrier of a Cyclosporine Self-Emulsifying Formulation

机译:多孔铝铝硅酸镁片作为环孢素自乳化制剂的载体

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摘要

The aim of this study was to investigate the ability of liquid loadable tablets (LLT) to be loaded with a self-microemulsifying drug delivery system (SMEDDS) containing cyclosporine (CyA). LLT were prepared by direct compression of the porous carrier magnesium aluminometasilicate and subsequently loaded with SMEDDS by a simple absorption method. SMEDDS was evaluated regarding visual appearance and droplet size distribution after dispersion in aqueous media. The developed SMEDDS was found to be similar to Neoral®. LLT were characterized before and after loading regarding weight variation, tablet hardness, disintegration time, and in vitro drug release. It was found that LLT with high porosities suitable for liquid loading and further processing could be prepared. Adding a tablet disintegrant was found to improve in vitro drug release. Additionally, the volume-based loading capacity of LLT was evaluated and found to be comparable to soft gelatin and hard two-piece capsules. Furthermore, the pharmacokinetic performance of CyA from loaded LLT was tested in two PK-studies in dogs. Absorption of CyA from SMEDDS loaded into LLT was found in the first study to be significantly lower than the absorption of CyA from SMEDDS filled into a capsule. However, addition of a superdisintegrant improved the absorption markedly. The bioavailability of CyA from SMEDDS loaded into disintegrating LLT was found in the second study to be at the same level as from capsule formulation. In conclusion, the LLT technology is therefore seen as a promising alternative way of achieving a solid dosage form from liquid drug delivery systems.
机译:这项研究的目的是研究液体可装载片剂(LLT)装载含有环孢素(CyA)的自微乳化药物递送系统(SMEDDS)的能力。通过直接压缩多孔载体铝硅铝酸镁来制备LLT,然后通过简单的吸收方法将其装载于SMEDDS。评估了SMEDDS在水性介质中分散后的外观和液滴尺寸分布。发现开发的SMEDDS与Neoral®类似。在装载前后对LLT进行了表征,包括重量变化,片剂硬度,崩解时间和体外药物释放。发现可以制备适合于液体装载和进一步加工的具有高孔隙率的LLT。发现添加片剂崩解剂可改善体外药物释放。此外,评估了LLT的基于体积的负载能力,发现其与软明胶和硬质两件式胶囊相当。此外,在两个狗的PK研究中测试了来自负载的LLT的CyA的药代动力学性能。在第一个研究中发现,加载到LLT中的SMEDDS对CyA的吸收明显低于填充到胶囊中的SMEDDS对CyA的吸收。但是,添加超崩解剂可显着提高吸收率。在第二项研究中,发现从SMEDDS加载到崩解LLT中的CyA的生物利用度与胶囊制剂的生物利用度相同。总之,因此,LLT技术被视为从液体药物输送系统获得固体剂型的一种有前途的替代方法。

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