Zhao Yannan, Trewyn Brian G, Slowing Igor I, Lin Victor S-Y
Department of Chemistry, U.S. Department of Energy Ames Laboratory, Iowa State University, Ames, Iowa 50011-3111, USA.
J Am Chem Soc. 2009 Jun 24;131(24):8398-400. doi: 10.1021/ja901831u.
A boronic acid-functionalized mesoporous silica nanoparticle-based drug delivery system (BA-MSN) for glucose-responsive controlled release of both insulin and cyclic adenosine monophosphate (cAMP) was synthesized. Fluorescein isothiocyanate-labeled, gluconic acid-modified insulin (FITC-G-Ins) proteins were immobilized on the exterior surface of BA-MSN and also served as caps to encapsulate cAMP molecules inside the mesopores of BA-MSN. The release of both G-Ins and cAMP was triggered by the introduction of saccharides. The selectivity of FITC-G-Ins release toward a series of carbohydrate triggers was determined to be fructose > glucose > other saccharides. The unique feature of this double-release system is that the decrease of FITC-G-Ins release with cycles can be balanced by the release of cAMP from mesopores of MSN, which is regulated by the gatekeeper effect of FITC-G-Ins. In vitro controlled release of cAMP was studied at two pH conditions (pH 7.4 and 8.5). Furthermore, the cytotoxicity of cAMP-loaded G-Ins-MSN with four different cell lines was investigated by cell viability and proliferation studies. The cellular uptake properties of cAMP-loaded FITC-BA-MSN with and without G-Ins capping were investigated by flow cytometry and fluorescence confocal microscopy. We envision that this glucose-responsive MSN-based double-release system could lead to a new generation of self-regulated insulin-releasing devices.
合成了一种基于硼酸功能化介孔二氧化硅纳米颗粒的药物递送系统(BA-MSN),用于胰岛素和环磷酸腺苷(cAMP)的葡萄糖响应性控释。将异硫氰酸荧光素标记、葡萄糖酸修饰的胰岛素(FITC-G-Ins)蛋白固定在BA-MSN的外表面,并且还用作封端剂以将cAMP分子封装在BA-MSN的介孔内。G-Ins和cAMP的释放通过引入糖类来触发。确定FITC-G-Ins向一系列碳水化合物触发剂的释放选择性为果糖>葡萄糖>其他糖类。这种双释放系统的独特之处在于,FITC-G-Ins释放随循环次数的减少可通过MSN介孔中cAMP的释放来平衡,而cAMP的释放受FITC-G-Ins的守门人效应调节。在两种pH条件(pH 7.4和8.5)下研究了cAMP的体外控释。此外,通过细胞活力和增殖研究考察了载有cAMP的G-Ins-MSN对四种不同细胞系的细胞毒性。通过流式细胞术和荧光共聚焦显微镜研究了有无G-Ins封端的载有cAMP的FITC-BA-MSN的细胞摄取特性。我们设想这种基于葡萄糖响应性MSN的双释放系统可能会导致新一代的自我调节胰岛素释放装置。