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功能化铟金属有机框架中开放活性位点的优先配位控制 Zn 触发药物释放。

Controlled Zn-Triggered Drug Release by Preferred Coordination of Open Active Sites within Functionalization Indium Metal Organic Frameworks.

机构信息

MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage, School of Chemistry and Chemical Engineering, Harbin Institute of Technology , Harbin 150001, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2017 Aug 30;9(34):28939-28948. doi: 10.1021/acsami.7b09227. Epub 2017 Aug 17.

Abstract

Drug delivery in target regions could make extraordinary progress in chemoselective therapies. A novel preferred coordination (PC) strategy referring to proactive interacting with open active sites to replace previous occupation by ion-exchange for controlling release of drug molecules is well-constructed. Two topological types of MOF-In1 (Schläfli symbol: (4,8)-connected of (4·6·8)(4·6)) and MOF-In2 (Schläfli symbol: (4,4)-connected of (6)) show the specific way. Increasing node connectivity as well as the trapping of guest OH anions, 5-fluorouracil (5-FU) is preferentially captured into the MOF-In1, which exhibits an outstanding loading capacity around 34.32 wt %. F NMR spectroscopy was further employed to investigate host-guest interaction and reveal the binding constant (K = 3.84 × 10 M). Meanwhile, the controlled release of 5-FU in a simulated human body with liquid phosphate-buffered saline solution by biofriendly Zn-triggered is realized. With an elevated Zn concentration, the drug release will be enhanced. This efficient strategy for MOFs as multifunctional drug carrier opens a new avenue for biological and medical applications.

摘要

药物递送至靶区可使化学选择性疗法取得非凡进展。一种新颖的优先配位(PC)策略,涉及主动与开放的活性位点相互作用,以取代以前通过离子交换来控制药物分子释放的占据,这一策略得到了很好的构建。两种拓扑类型的 MOF-In1(Schläfli 符号:(4,8)-连接的(4·6·8)(4·6))和 MOF-In2(Schläfli 符号:(4,4)-连接的(6))表现出特定的方式。增加节点连接性以及捕获客体 OH 阴离子,5-氟尿嘧啶(5-FU)优先被捕获到 MOF-In1 中,其表现出约 34.32wt%的出色负载能力。F NMR 光谱进一步用于研究主客体相互作用并揭示结合常数(K = 3.84×10 M)。同时,通过生物友好的 Zn 触发在模拟人体的液体磷酸盐缓冲盐溶液中实现了 5-FU 的控制释放。随着 Zn 浓度的升高,药物释放将增强。这种作为多功能药物载体的 MOFs 的有效策略为生物和医学应用开辟了新途径。

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