Department of Green Bio Engineering, Korea National University of Transportation, Chungju 380-702, Republic of Korea.
Int J Pharm. 2013 Jun 25;450(1-2):208-17. doi: 10.1016/j.ijpharm.2013.04.053. Epub 2013 Apr 25.
Strategy, to develop stable graphene and well control hydrophobic drug release from the prepared graphene, is reported to achieve a biomedical platform in drug delivery system. Reduced graphene oxide (rGO) has been prepared using quaternized 2-chloro-3',4'-dihydroxyacetophenone to poly(ethylene glycol)-g-poly(dimethylaminoethyl methacrylate) [PEG-g-PDMA, QC-PEG] following catechol chemistry which exhibited excellent dispersibility in water. Installation of thiol grafted Pluronic (Plu-SH) results formation of disulfide bonds surrounding rGO/QC-PEG matrix and further aids to achieve high DOX loading efficiency as well as trigged responsive controlled release behavior of DOX from the matrixes by redox responsive Plu-SH and pH sensitive. The rGO/QC-PEG with Plu-SH matrix showed significant stability under different physiological conditions. In vitro DOX release was conducted against different reductive environment and at different pH to figure out the release kinetics. Investigation from MTT assay assures more biocompatible behavior of rGO/QC-PEG/Plu-SH than prepared reduced graphene oxide. Effects of introducing Plu-SH was flashed when QDs loaded rGO/QC-PEG was applied to cell and examining the emitted fluorescence behavior from the cell by confocal images. The confocal investigation showed that high quenching effect of graphene is an obstacle to trace their position if it is used in cell tracking where application of Plu-SH could minimize this.
为了在药物输送系统中实现生物医学平台,报道了一种策略,即开发稳定的石墨烯并很好地控制所制备的石墨烯中疏水性药物的释放。使用季铵化 2-氯-3',4'-二羟基苯乙酮通过儿茶酚化学将还原氧化石墨烯(rGO)制备为聚(乙二醇)-g-聚(二甲基氨基乙基甲基丙烯酸酯)[PEG-g-PDMA,QC-PEG],其在水中表现出优异的分散性。巯基接枝的 Pluronic(Plu-SH)的安装导致形成围绕 rGO/QC-PEG 基质的二硫键,并且进一步有助于通过氧化还原响应的 Plu-SH 和 pH 敏感实现 DOX 从基质中的高负载效率和触发响应的控制释放行为。具有 Plu-SH 基质的 rGO/QC-PEG 显示出在不同生理条件下的显著稳定性。进行了针对不同还原环境和不同 pH 值的体外 DOX 释放以确定释放动力学。MTT 测定的研究确保了 rGO/QC-PEG/Plu-SH 比制备的还原氧化石墨烯具有更好的生物相容性。当将负载有 QD 的 rGO/QC-PEG 应用于细胞并通过共焦图像检查细胞中发射的荧光行为时,引入 Plu-SH 的效果得到了体现。共聚焦研究表明,如果将石墨烯用于细胞跟踪,则其高猝灭效应会成为追踪其位置的障碍,如果应用 Plu-SH,则可以最小化这种情况。