Department of Pharmacy, Pharmaceutical Technology and Physical Chemistry, Faculty of Pharmacy and Food Sciences, University of Barcelona, 08028 Barcelona, Spain.
Department of Pharmacy, Pharmaceutical Technology and Physical Chemistry, Faculty of Pharmacy and Food Sciences, University of Barcelona, 08028 Barcelona, Spain; Institute of Nanoscience and Nanotechnology (IN2UB), University of Barcelona, 08028 Barcelona, Spain.
Int J Pharm. 2018 Aug 25;547(1-2):338-346. doi: 10.1016/j.ijpharm.2018.05.050. Epub 2018 May 22.
The main objective of this study was the development and optimization of fluorometholone-loaded PLGA nanoparticles for the treatment of inflammatory conditions of the eye. Design of experiments was used to obtain nanoparticles with the best physicochemical characteristics. The optimized nanoparticles containing 1.5 mg·mL of fluorometholone showed a negative surface charge (-30 mV) and an average size below 200 nm being suitable for ocular administration. Drug-polymer interaction studies confirmed no new bonds were formed during the synthesis. Nanoparticles performance was assessed with biopharmaceutical behavior studies, ocular tolerance, anti-inflammatory efficacy and bioavailability. The biopharmaceutical behavior of the drug from nanoparticles was adjusted to hyperbola order showing a significantly greater permeation in the cornea than in the sclera. The optimized formulation had significantly greater anti-inflammatory effects than the commercial formulation. In addition, nanoparticles increased drug penetration toward the vitreous. Polymeric nanoparticles of fluorometholone could provide a suitable alternative for the treatment of inflammatory disorders of the anterior and posterior segments of the eye against of conventional topical formulations.
本研究的主要目的是开发和优化载氟米龙的 PLGA 纳米粒,用于治疗眼部炎症。通过实验设计获得具有最佳理化特性的纳米粒。优化后的载 1.5mg·mL 氟米龙的纳米粒带负电荷(-30mV),平均粒径小于 200nm,适合眼部给药。药物-聚合物相互作用研究证实,在合成过程中没有形成新的键。通过生物药剂学行为研究、眼部耐受性、抗炎疗效和生物利用度评估了纳米粒的性能。纳米粒中药物的生物药剂学行为呈双曲型,表明其在角膜中的渗透性显著大于巩膜。优化后的配方比商业配方具有更显著的抗炎效果。此外,纳米粒增加了药物向玻璃体的渗透。载氟米龙的聚合物纳米粒可替代传统的局部制剂,为治疗眼前段和眼后段的炎症性疾病提供合适的选择。