Frenț Olimpia Daniela, Duteanu Narcis, Teusdea Alin Cristian, Ciocan Stefania, Vicaș Laura, Jurca Tunde, Muresan Mariana, Pallag Annamaria, Ianasi Paula, Marian Eleonora
Doctoral School of Biomedical Science, University of Oradea, 1 University Street, 410087 Oradea, Romania.
Faculty of Industrial Chemistry and Environmental Engineering, Politehnica University of Timisoara, 2 Piata Victoriei, 300006 Timisoara, Romania.
Polymers (Basel). 2022 Jan 26;14(3):490. doi: 10.3390/polym14030490.
The aim of this paper was to formulate microspheres based on biodegradable polymers (chitosan and sodium alginate), using the complex coacervation technique. Subsequently, the prepared microspheres were loaded with quercetin (QUE), a pharmacological active ingredient insoluble in water and unstable to light, temperature and air. After preparation, the loaded microspheres underwent several studies for physical chemical characterization (performed by scanning electron microscopy-SEM, laser 3D scanning, and thermal analysis-TA). Furthermore, they were analyzed in order to obtain information regarding swelling index, drug entrapment, and in vitro release capacity. The obtained experimental data demonstrated 86.07% entrapment of QUE into the microspheres, in the case of the one with the highest Ch concentration. Additionally, it was proved that such systems allow the controlled release of the active drug over 24 h at the intestinal level. SEM micrographs proved that the prepared microspheres have a wrinkled surface, with compact structures and a large number of folds. On the basis of the TA analysis, it was concluded that the obtained microspheres were thermally stable, facilitating their usage at normal physiological temperatures as drug delivery systems.
本文旨在采用复凝聚技术,制备基于可生物降解聚合物(壳聚糖和海藻酸钠)的微球。随后,将槲皮素(QUE)负载到制备好的微球中,槲皮素是一种不溶于水且对光、温度和空气不稳定的药理活性成分。制备后,对负载微球进行了多项物理化学表征研究(通过扫描电子显微镜-SEM、激光3D扫描和热分析-TA进行)。此外,对它们进行分析以获取有关溶胀指数、药物包封率和体外释放能力的信息。在Ch浓度最高的情况下,获得的实验数据表明QUE在微球中的包封率为86.07%。此外,已证明此类系统可使活性药物在肠道水平上在24小时内实现控释。SEM显微照片证明,制备的微球表面有皱纹,结构紧凑且有大量褶皱。基于TA分析得出结论,所获得的微球具有热稳定性,便于在正常生理温度下作为药物递送系统使用。