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Preparation and characterization of solid lipid nanoparticles containing cyclosporine by the emulsification-diffusion method

机译:乳化扩散法制备含环孢霉素的固体脂质纳米粒及其表征

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摘要

Solid lipid nanoparticles (SLNs) have been used for carrying different therapeutic agents because they improve absorption and bioavailability. The aim of the study was to prepare lipidic nanoparticles containing cyclosporine (CyA) by the emulsification-diffusion method and to study their physicochemical stability. Glyceryl behenate (Compritol® ATO 888) and lauroyl macrogolglycerides (Gelucire® 44/14) were used as carrier materials. Nanoparticles with good stability were obtained with Gelucire®, while it was difficult to obtain stable systems with Compritol®. Systems with Gelucire® were characterized by particle size, Z-potential, differential scanning calorimetry (DSC), scanning electron microscopy (SEM), entrapment efficiency and in vitro release. Particle size and Z-potential were evaluated for at least three months. With a high CyA content (≥60 mg) in Gelucire® SLNs, variations in size were greater and particle size also increased over time in all batches; this effect may have been caused by a probable expulsion of the drug due to the lipid’s partial rearrangement. While the Z-potential decreased 10 mV after three months, this effect may be explained by the superficial properties of the drug that make the molecules to be preferably oriented at the solid-liquid interface, causing a change in the net charge of the particle. SEM confirmed size and shape of the nanoparticles. DSC studies evidenced that CyA affects the lipid structure by a mechanism still unknown. The entrapment efficiency was higher than 92%, and CyA release from SLNs was relatively fast (99.60% in 45 min).
机译:固体脂质纳米颗粒(SLN)已用于携带不同的治疗剂,因为它们可以改善吸收和生物利用度。该研究的目的是通过乳化-扩散法制备含环孢素(CyA)的脂质纳米颗粒,并研究其理化稳定性。山be酸甘油酯(ATO 888)和月桂酰聚乙二醇甘油酯(Gelucire®44/14)用作载体材料。用Gelucire®获得具有良好稳定性的纳米颗粒,而用Compritol®则难以获得稳定的系统。具有Gelucire®的系统的特征在于粒径,Z电位,差示扫描量热法(DSC),扫描电子显微镜(SEM),包封效率和体外释放。至少三个月评估了粒径和Z电位。 Gelucire®SLN中的CyA含量高(≥60 mg),所有批次的粒径变化更大,粒径也随时间增加;这种作用可能是由于脂质的部分重排而可能驱逐了药物引起的。尽管三个月后Z电位降低了10 mV,但这种作用可能是由于药物的表面性质所致,该表面性质使分子优选在固液界面处取向,从而导致颗粒的净电荷发生变化。 SEM证实了纳米颗粒的尺寸和形状。 DSC研究证明,CyA通过尚不清楚的机制影响脂质结构。包封率高于92%,并且从SLNs中释放CyA相对较快(45分钟内为99.60%)。

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