Institute of Chemical and Engineering Sciences, A*STAR (Agency for Science, Technology and Research), 1 Pesek Road, Jurong Island, Singapore 627833.
Curr Pharm Des. 2013;19(35):6270-89. doi: 10.2174/1381612811319350005.
Due to uniquely ordered nanoporous structure and high surface area as well as large pore volume, mesoporous materials have exhibited excellent performance in both controlled drug delivery with sustained release profiles and formulation of poorly aqueoussoluble drugs with enhanced bioavailability. Compared with other bulk excipients, mesoporous materials could achieve a higher loading of active ingredients and a tunable drug release profile, as the high surface density of surface hydroxyl groups offered versatility to be functionalized. With drug molecules stored in nano sized channels, the pore openings could be modified using functional polymers or nano-valves performing as stimuli-responsive release devices and the drug release could be triggered by environmental changes or other external effects. In particular, mesoporous silica nanoparticles (MSN) have attracted much attention for application in functional target drug delivery to the cancer cell. The smart nano-vehicles for drug delivery have showed obvious improvements in the therapeutic efficacy for tumor suppression as compared with conventional sustained release systems, although further progress is still needed for eventual clinical applications. Alternatively, unmodified mesoporous silica also exhibited feasible application for direct formulation of poorly water-soluble drugs to enhance dissolution rate, solubility and thus increase the bioavailability after administration. In summary, mesoporous materials offer great versatility that can be used both for on-demand oral and local drug delivery, and scientists are making great efforts to design and fabricate innovative drug delivery systems based on mesoporous drug carriers.
由于具有独特有序的纳米多孔结构、高比表面积和大孔体积,介孔材料在控制药物释放和改善难溶性药物生物利用度方面表现出了优异的性能。与其他块状赋形剂相比,介孔材料可以实现更高的活性成分载药量和可调节的药物释放曲线,因为表面羟基的高表面密度提供了多功能性,可以进行功能化。药物分子储存在纳米尺寸的通道中,可以使用功能聚合物或纳米阀对孔开口进行修饰,这些纳米阀可以作为响应性释放装置,药物释放可以通过环境变化或其他外部效应触发。特别是介孔硅纳米粒子(MSN),由于其在癌症细胞的功能靶向药物传递中的应用而受到广泛关注。与传统的缓释系统相比,智能纳米药物载体在肿瘤抑制的治疗效果方面显示出了明显的改善,尽管最终的临床应用仍需要进一步的进展。或者,未修饰的介孔硅也可用于直接配制难溶性药物,以提高药物的溶解速率、溶解度,从而提高给药后的生物利用度。总之,介孔材料具有很大的通用性,可以用于按需口服和局部药物传递,科学家们正在努力设计和制造基于介孔药物载体的创新药物传递系统。