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智能大孔 IPN 水凝胶对 pH、温度和离子强度的响应:药物控制释放的合成、表征和评价。

Smart Macroporous IPN Hydrogels Responsive to pH, Temperature, and Ionic Strength: Synthesis, Characterization, and Evaluation of Controlled Release of Drugs.

机构信息

"Petru Poni" Institute of Macromolecular Chemistry , Grigore Ghica Voda Alley 41 A, Iasi 700487, Romania.

出版信息

ACS Appl Mater Interfaces. 2016 May 18;8(19):12018-30. doi: 10.1021/acsami.6b02264. Epub 2016 May 4.

Abstract

Fast responsive macroporous interpenetrating polymer network (IPN) hydrogels were fabricated in this work by a sequential strategy, as follows: the first network, consisting of poly(N,N-dimethylaminoethyl methacrylate) (PDMAEM) cross-linked with N,N'-methylenebisacrylamide (BAAm), was prepared at -18 °C, the second network consisting of poly(acrylamide) (PAAm) cross-linked with BAAm, being also generated by cryogelation technique. Both single network cryogels (SNC) and IPN cryogels were characterized by Fourier transform infrared spectroscopy, scanning electron microscopy, and water uptake. The presence of weak polycation PDMAEM endows the SNCs and the IPNs cryogels with sensitivity at numerous external stimuli such as pH, temperature, ionic strength, electric field, among which the first three were investigated in this work. It was found that the initial concentration of monomers in both networks was the key factor in tailoring the properties of IPN cryogels such as swelling kinetics, equilibrium water content (EWC), phase transition temperature and the response at ionic strength. The pore size increased after the formation of the second network, the swelling kinetics in pure water being comparable with that of the SNC, phase transition temperature being situated in the range 35-36 °C for IPN cryogels. The water uptake at equilibrium (WUeq) abruptly increased at pH < 3.0 in the case of SNCs, whereas the response of IPN cryogels at the decrease of pH from 6.0 to 1.0 was strongly dependent on the gel structure, the values of WUeq being lower at a higher concentration of DMAEM in the first network, the monomer concentration in the second network being about 10 wt %. The pH response was very much diminished when the monomer concentration was high in both networks (15 wt % in the first network, and 21 wt % in the second network). The increase of the ionic strength from 0 up to 0.3 M NaCl led to the decrease of the WUeq, for all cryogels, the level of dehydration being higher and faster for the SNC than for the corresponding IPN cryogel. The release of diclofenac sodium (DS), as a model acidic drug, triggered by pH, temperature, and ionic strength from the IPN cryogels was evaluated. A pulsatile release of DS from the IPN cryogels was presented, with a slower release at 34 °C (below VPTT) and a faster release at 37 and 40 °C (above the VPTT).

摘要

本工作采用顺序策略制备了快速响应的大孔互穿聚合物网络(IPN)水凝胶,具体方法如下:首先在-18°C 下制备由聚(N,N-二甲基氨基乙基甲基丙烯酸酯)(PDMAEM)与 N,N'-亚甲基双丙烯酰胺(BAAm)交联形成的第一网络,然后通过冷冻凝胶技术生成由丙烯酰胺(PAAm)与 BAAm 交联形成的第二网络。单网络冷冻凝胶(SNC)和 IPN 冷冻凝胶均通过傅里叶变换红外光谱、扫描电子显微镜和吸水率进行了表征。弱聚阳离子 PDMAEM 的存在使 SNC 和 IPN 冷冻凝胶对多种外部刺激(如 pH 值、温度、离子强度、电场等)具有敏感性,本工作研究了前三种刺激。结果表明,两个网络中单体的初始浓度是调节 IPN 冷冻凝胶性能的关键因素,如溶胀动力学、平衡水含量(EWC)、相转变温度和离子强度响应等。形成第二网络后,孔径增大,在纯水中的溶胀动力学与 SNC 相当,相转变温度位于 35-36°C 范围内。在 SNC 中,当 pH 值 < 3.0 时,平衡吸水率(WUeq)突然增加,而 IPN 冷冻凝胶在 pH 值从 6.0 降低至 1.0 时的响应强烈依赖于凝胶结构,在第一网络中 DMAEM 浓度较高时,WUeq 值较低,第二网络中的单体浓度约为 10wt%。当两个网络中的单体浓度较高时(第一网络中的单体浓度为 15wt%,第二网络中的单体浓度为 21wt%),pH 值响应大大降低。离子强度从 0 增加到 0.3 M NaCl 会导致所有冷冻凝胶的 WUeq 下降,对于 SNC,脱水水平更高,脱水速度也比相应的 IPN 冷冻凝胶更快。评估了 IPN 冷冻凝胶在 pH 值、温度和离子强度触发下对双氯芬酸钠(DS)这种模型酸性药物的释放情况。结果表明,DS 从 IPN 冷冻凝胶中呈现出脉冲式释放,在 34°C(低于 VPTT)时释放速度较慢,在 37 和 40°C(高于 VPTT)时释放速度较快。

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