School of Chemistry and Material Science, Heilongjiang University, Harbin, China.
Int J Nanomedicine. 2011;6:3049-56. doi: 10.2147/IJN.S26450. Epub 2011 Nov 28.
Insulin was complexed with sodium deoxycholate to form an insulin-sodium deoxycholate complex (Ins-SD-Comp) using an hydrophobic ion pairing method in aqueous phase to enhance the liposolubility of insulin. In order to obtain the maximal complexation efficiency, the molar ratio of sodium deoxycholate to insulin was found. The zeta potential method was used to confirm the optimal ratio for formation of Ins-SD-Comp. The structural characteristics of Ins-SD-Comp were assessed using the Fourier transform infrared method. The apparent partition coefficient of insulin increased upon the formation of Ins-SD-Comp. Based on the preliminary study, Ins-SD-Comp was encapsulated into poly(lactide-co-glycolide) (PLGA) nanoparticles using an emulsion solvent diffusion method. The maximal encapsulation efficiency of Ins-SD-Comp into PLGA nanoparticles was 93.6% ± 2.81%, drug loading was about 4.8% ± 0.32%, and the mean diameter of the nanoparticles was 278 ± 13 nm. Biological activity and in vivo results revealed that the bioactivity of insulin was not destroyed during the preparation process. Ins-SD-Comp-loaded PLGA nanoparticles have the potential to reduce serum glucose levels and increase the oral bioavailability of insulin.
胰岛素与脱氧胆酸钠通过疏水离子对方法在水相中复合形成胰岛素-脱氧胆酸钠复合物(Ins-SD-Comp),以提高胰岛素的脂溶性。为了获得最大的复合效率,确定了脱氧胆酸钠与胰岛素的摩尔比。zeta 电位法用于确认形成 Ins-SD-Comp 的最佳比例。使用傅里叶变换红外法评估了 Ins-SD-Comp 的结构特征。胰岛素的表观分配系数在形成 Ins-SD-Comp 后增加。基于初步研究,使用乳液溶剂扩散法将 Ins-SD-Comp 包封到聚(乳酸-共-乙醇酸)(PLGA)纳米粒中。Ins-SD-Comp 到 PLGA 纳米粒的最大包封效率为 93.6%±2.81%,载药量约为 4.8%±0.32%,纳米粒的平均直径为 278±13nm。生物活性和体内结果表明,胰岛素的生物活性在制备过程中未被破坏。Ins-SD-Comp 负载的 PLGA 纳米粒有可能降低血清葡萄糖水平并提高胰岛素的口服生物利用度。