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首页> 外文期刊>Materials >Study of Lysozyme-Loaded Poly-L-Lactide (PLLA) Porous Microparticles in a Compressed CO2 Antisolvent Process
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Study of Lysozyme-Loaded Poly-L-Lactide (PLLA) Porous Microparticles in a Compressed CO2 Antisolvent Process

机译:CO 2 反溶剂压缩过程中溶菌酶负载的聚乳酸交联剂(PLLA)多孔微粒的研究

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摘要

Lysozyme (LSZ)-loaded poly-L-lactide (PLLA) porous microparticles (PMs) were successfully prepared by a compressed CO2 antisolvent process in combination with a water-in-oil emulsion process using LSZ as a drug model and ammonium bicarbonate as a porogen. The effects of different drug loads (5.0%, 7.5% and 10.0%) on the surface morphology, particle size, porosity, tapped density and drug release profile of the harvested PMs were investigated. The results show that an increase in the amount of LSZ added led to an increase in drug load (DL) but a decrease in encapsulation efficiency. The resulting LSZ-loaded PLLA PMs (LSZ-PLLA PMs) exhibited a porous and uneven morphology, with a density less than 0.1 g·cm−3, a geometric mean diameter of 16.9–18.8 μm, an aerodynamic diameter less than 2.8 μm, a fine particle fraction (FPF) of 59.2%–66.8%, and a porosity of 78.2%–86.3%. According to the results of differential scanning calorimetry, the addition of LSZ improved the thermal stability of PLLA. The Fourier transform infrared spectroscopy analysis and circular dichroism spectroscopy measurement reveal that no significant changes occurred in the molecular structures of LSZ during the fabrication process, which was further confirmed by the evaluation of enzyme activity of LSZ. It is demonstrated that the emulsion-combined precipitation with compressed antisolvent (PCA) process could be a promising technology to develop biomacromolecular drug-loaded inhalable carrier for pulmonary drug delivery.
机译:压缩溶质CO 2 反溶剂法结合油溶水乳液法成功制备了溶菌酶负载的聚L-丙交酯(PLLA)多孔微粒(PMs)。药物模型和碳酸氢铵作为致孔剂。研究了不同载药量(5.0%,7.5%和10.0%)对收获的PM的表面形态,粒径,孔隙率,堆积密度和药物释放曲线的影响。结果表明,增加的LSZ数量导致药物负荷(DL)的增加,但包封效率的下降。所得的负载LSZ的PLLA PMs(LSZ-PLLA PMs)呈现出多孔且不均匀的形态,密度小于0.1 g·cm -3 ,几何平均直径为16.9–18.8μm,空气动力学直径小于2.8μm,细颗粒率(FPF)为59.2%–66.8%,孔隙度为78.2%–86.3%。根据差示扫描量热法的结果,LSZ的添加改善了PLLA的热稳定性。傅里叶变换红外光谱分析和圆二色光谱测量表明,在制备过程中,LSZ的分子结构没有发生明显变化,这通过对LSZ酶活性的评估得到了进一步证实。结果表明,乳液结合沉淀与压缩反溶剂(PCA)工艺可能是开发有生物大分子药物负载的可吸入载体用于肺部药物输送的有前途的技术。

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