Laboratory of Pharmaceutical Technology, Faculty of Pharmacy, University of Porto, Rua de Jorge Viterbo Ferreira 228, 4050-313 Porto, Portugal; Department of Pharmacy & Pharmaceutical Technology, School of Pharmacy, University of Barcelona, Joan XXIII s/n, 08028 Barcelona, Spain; Nanoprobes and Nanoswitches Group, Institute for Bioengineering of Catalonia (IBEC), Edifici Hèlix, Baldiri Reixac 15-21, 08028 Barcelona, Spain.
REQUIMTE, Department of Chemistry, Faculty of Pharmacy, University of Porto, Rua de Jorge Viterbo Ferreira 228, 4050-313 Porto, Portugal; CESPU, Instituto de Investigação e Formação Avançada em Ciências e Tecnologias da Saúde, Rua Central de Gandra, 1317, 4585-116 Gandra PRD, Portugal.
Int J Pharm. 2015;486(1-2):195-206. doi: 10.1016/j.ijpharm.2015.03.050. Epub 2015 Mar 26.
Nanocomposite powders composed by polymeric micelles as vehicles for delivery proteins were developed in this work, using insulin as model protein. Results showed that size and polydispersity of micelles were dependent on the amphiphilic polymer used, being all lower than 300 nm, while all the formulations displayed spherical shape and surface charge close to neutrality. Percentages of association efficiency and loading capacity up to 94.15 ± 3.92 and 8.56 ± 0.36, respectively, were obtained. X-ray photoelectron spectroscopy (XPS) measurements confirmed that insulin was partially present at the hydrophilic shell of the micelles. Lyophilization did not significantly change the physical characteristics of micelles, further providing easily dispersion when in contact to aqueous medium. The native-like conformation of insulin was maintained at high percentages (around 80%) after lyophilization as indicated by Fourier transform infrared spectroscopy (FTIR) and far-UV circular dichroism (CD). Moreover, Raman spectroscopy did not evidenced significant interactions among the formulation components. The formulations shown to be physically stable upon storage up to 6 months both at room-temperature (20 °C) and fridge (4 °C), with only a slight loss (maximum of 15%) of the secondary structure of the protein. Among the polymers tested, Pluronic(®) F127 produced the carrier formulations more promising for delivery of proteins.
本工作制备了由聚合物胶束作为载体的纳米复合粉末,用于递送蛋白质,选用胰岛素作为模型蛋白。结果表明,胶束的粒径和多分散性取决于所使用的两亲性聚合物,均低于 300nm,所有制剂均显示为球形且表面电荷接近中性。分别获得了高达 94.15±3.92%和 8.56±0.36%的结合效率和载药量。X 射线光电子能谱(XPS)测量证实,胰岛素部分存在于胶束的亲水壳层中。冷冻干燥不会显著改变胶束的物理特性,进一步提供了在与水介质接触时容易分散的特性。如傅里叶变换红外光谱(FTIR)和远紫外圆二色性(CD)所示,在冷冻干燥后,胰岛素的天然构象保持在较高的百分比(约 80%)。此外,拉曼光谱未表明制剂成分之间存在显著相互作用。在室温(20°C)和冰箱(4°C)下储存长达 6 个月时,制剂表现出物理稳定性,仅蛋白质二级结构略有损失(最大 15%)。在所测试的聚合物中,Pluronic(®) F127 产生的载体制剂更适合蛋白质的递送。