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Fluorescent Graphene Oxide via Polymer Grafting: An Efficient Nanocarrier for Both Hydrophilic and Hydrophobic Drugs

机译:通过聚合物接枝的荧光氧化石墨烯:亲水和疏水药物的高效纳米载体。

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Functionalized graphene-based drug delivery vehicles have conquered a significant position because functionalization improves its biocompatibility and stability in cell medium, leaving sufficient graphitic basal plane for drug loading through pp stacking. In this study, poly(N-isopropylacrylamide) (PNIPAM) is covalently grafted from the surface of graphene oxide (GO) via a facile, eco-friendly and an easy procedure of free radical polymerization (FRP) using ammonium persulfate initiator. Various spectroscopic and microscopic studies confirm the successful grafting of PNIPAM from GO surface. PNIPAM-grafted GO (GPNM) exhibits enhanced thermal stability, improved dispersibility both in aqueous and cell medium, and better biocompatibility and cell viability compared to GO. Interestingly, GPNM displays an exciting fluorescence property in aqueous medium, which is a hike of intensity at 36 degrees C due to the lower critical solution temperature (LCST) of PNIPAM chains (32 degrees C). Moreover both hydrophilic (doxorubicin (DOX)) and hydrophobic (indomethacin (IMC)) drugs loaded on the surface of GPNM hybrid exhibits its efficacy as an efficient carrier for both types of drugs. Cellular uptakes of free DOX and DOX-loaded GPNM (GPNM-DOX) are evidenced both from optical and fluorescence imaging of live cells, and the efficiency of drug is significantly improved in the loaded system. The release of DOX from GPNM-DOX was achieved at pH 4, relevant to the environment of cancer cells. The pH-triggered release of hydrophobic drug was also studied using UVvis spectroscopy via alginate encapsulation, showing a great enhancement at pH = 7.4. The IMC is also found to be released by human serum albumin using dialysis technique. The GPNM nanomaterial shows the property of simultaneous loading of DOX and IMC as well as pH-triggered simultaneous release of both of the drugs.
机译:功能化的基于石墨烯的药物递送载体已占据重要位置,因为功能化改善了其在细胞培养基中的生物相容性和稳定性,为通过pp堆叠装载药物留下了足够的石墨基面。在这项研究中,聚(N-异丙基丙烯酰胺)(PNIPAM)是使用过硫酸铵引发剂通过一种简便,环保且简便的自由基聚合(FRP)程序从氧化石墨烯(GO)的表面共价接枝的。各种光谱和显微镜研究证实了从GO表面成功接枝PNIPAM。与GO相比,PNIPAM接枝的GO(GPNM)具有更高的热稳定性,在水和细胞介质中的分散性以及更好的生物相容性和细胞活力。有趣的是,GPNM在水性介质中显示出令人兴奋的荧光特性,由于PNIPAM链的临界溶液温度(LCST)较低(32摄氏度),因此在36摄氏度时强度有所提高。此外,装载在GPNM杂种表面上的亲水性药物(阿霉素(DOX))和疏水性药物(吲哚美辛(IMC))都显示出作为两种药物的有效载体的功效。活细胞的光学和荧光成像都证明了游离DOX和DOX加载的GPNM(GPNM-DOX)的细胞摄取,并且在加载的系统中药物效率得到了显着提高。从GPNM-DOX释放DOX是在pH 4下实现的,这与癌细胞的环境有关。还通过紫外可见光谱通过藻酸盐包封研究了pH引发的疏水性药物释放,在pH = 7.4时显示出很大的增强。使用透析技术还发现IMC是由人血清白蛋白释放的。 GPNM纳米材料显示了同时装载DOX和IMC以及通过pH触发同时释放两种药物的特性。

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