Yao Yuan, Shen Heyun, Zhang Guanghui, Yang Jing, Jin Xu
State Key Laboratory of Chemical Resource, College of Life Science and Technology, Beijing University of Chemical Technology, Beijing 100029, China.
State Key Laboratory of Chemical Resource, College of Life Science and Technology, Beijing University of Chemical Technology, Beijing 100029, China.
J Colloid Interface Sci. 2014 Oct 1;431:216-22. doi: 10.1016/j.jcis.2014.05.051. Epub 2014 Jun 6.
We introduced thermo-sensitive poly(N-isopropylacrylamide) (PNIPAM) into the polymer structure of poly(ethylene glycol)-block-poly(phenylboronate ester) acrylate (MPEG-block-PPBDEMA) by block and random polymerization pathways in order to investigate the effect of polymer architecture on the glucose-responsiveness and enhance their insulin release controllability. By following the structure, the continuous PNIPAM shell of the triblock polymer MPEG-block-PNIPAM-block-PPBDEMA collapsing on the glucose-responsive PPBDEMA core formed the polymeric micelles with a core-shell-corona structure, and MPEG-block-(PNIPAM-rand-PPBDEMA) exhibited core-corona micelles in which the hydrophobic core consisted of PNIPAM and PPBDEMA segments when the environmental temperature was increased above low critical solution temperature (LCST) of PNIPAM. The micellar morphologies can be precisely controlled by temperature change between 15 and 37°C. As a result, the introduction of PNIPAM greatly enhanced the overall stability of insulin encapsulated in the polymeric micelles in the absence of glucose over incubation 80 h at 37°C. Comparing to MPEG-block-PNIPAM-block-PPBDEMA, the nanocarriers from MPEG-block-(PNIPAM-rand-PPBDEMA) showed great insulin release behavior which is zero insulin release without glucose, low release at normal blood glucose concentration (1.0 mg/mL). Therefore, these nanocarriers may be served as promising self-regulated insulin delivery system for diabetes treatment.
我们通过嵌段聚合和无规聚合途径将热敏性聚(N-异丙基丙烯酰胺)(PNIPAM)引入聚(乙二醇)-嵌段-聚(苯基硼酸酯)丙烯酸酯(MPEG-嵌段-PPBDEMA)的聚合物结构中,以研究聚合物结构对葡萄糖响应性的影响,并增强其胰岛素释放可控性。根据该结构,三嵌段聚合物MPEG-嵌段-PNIPAM-嵌段-PPBDEMA的连续PNIPAM壳层在葡萄糖响应性PPBDEMA核上塌陷,形成了具有核-壳-冠结构的聚合物胶束,而MPEG-嵌段-(PNIPAM-无规-PPBDEMA)在环境温度升高到PNIPAM的低临界溶液温度(LCST)以上时表现出核-冠胶束,其疏水核由PNIPAM和PPBDEMA链段组成。胶束形态可通过15至37°C之间的温度变化精确控制。结果,PNIPAM的引入大大提高了在37°C下无葡萄糖孵育80小时时包裹在聚合物胶束中的胰岛素的整体稳定性。与MPEG-嵌段-PNIPAM-嵌段-PPBDEMA相比,MPEG-嵌段-(PNIPAM-无规-PPBDEMA)的纳米载体表现出良好的胰岛素释放行为,即无葡萄糖时胰岛素零释放,在正常血糖浓度(1.0 mg/mL)下低释放。因此,这些纳米载体有望成为用于糖尿病治疗的自调节胰岛素递送系统。