溶解度
生物利用度
傅里叶变换红外光谱
化学
纳米团簇
小角X射线散射
材料科学
分子
小分子
纳米技术
化学工程
有机化学
散射
药理学
物理
光学
工程类
医学
生物化学
作者
Yuanzhi He,Wei Zhang,Tao Guo,Guoqing Zhang,Wei Qin,Liu Zhang,Caifen Wang,Weifeng Zhu,Ming Yang,Xiaoxiao Hu,Vikramjeet Singh,Li Wu,Ruxandra Gref,Jiwen Zhang
标识
DOI:10.1016/j.apsb.2018.09.003
摘要
Tremendous efforts have been devoted to the enhancement of drug solubility using nanotechnologies, but few of them are capable to produce drug particles with sizes less than a few nanometers. This challenge has been addressed here by using biocompatible versatile γ-cyclodextrin (γ-CD) metal-organic framework (CD-MOF) large molecular cages in which azilsartan (AZL) was successfully confined producing clusters in the nanometer range. This strategy allowed to improve the bioavailability of AZL in Sprague–Dawley rats by 9.7-fold after loading into CD-MOF. The apparent solubility of AZL/CD-MOF was enhanced by 340-fold when compared to the pure drug. Based on molecular modeling, a dual molecular mechanism of nanoclusterization and complexation of AZL inside the CD-MOF cages was proposed, which was confirmed by small angle X-ray scattering (SAXS) and synchrotron radiation-Fourier transform infrared spectroscopy (SR-FTIR) techniques. In a typical cage-like unit of CD-MOF, three molecules of AZL were included by the γ-CD pairs, whilst other three AZL molecules formed a nanocluster inside the 1.7 nm sized cavity surrounded by six γ-CDs. This research demonstrates a dual molecular mechanism of complexation and nanoclusterization in CD-MOF leading to significant improvement in the bioavailability of insoluble drugs.
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