School of Life Science and Medicine, Dalian University of Technology, Panjin 124221, China.
School of Life Science and Medicine, Dalian University of Technology, Panjin 124221, China; School of Chemical Engineering, Dalian University of Technology, Dalian 116024, China.
Int J Pharm. 2019 Feb 25;557:66-73. doi: 10.1016/j.ijpharm.2018.12.037. Epub 2018 Dec 21.
Graphene oxide (GO) owns huge surface area and high drug loading capacity for aromatic molecules, such as doxorubicin (DOX). However, its biocompatibility is poor and it might agglomerate in physiological conditions. Chemical modification of GO with hydrophilicpolymer, especially PEGylation, was a common method to improve its biocompatibility. But the chemical modification of GO was complicated, and its drug loading capacity might be reduced because of the occupation of its functional groups. In this study, DOX-PEG polymers with different PEG molecular weights were synthesized to modify nano graphene oxide (NGO) to simultaneously realize the solubilization of NGO and the high loading capacity of DOX. The result showed that the drug release of NGO@DOX-PEG was pH sensitive. NIR irradiation could augment the drug release, cellular uptake, cytotoxicity and nuclear translocation of nanodrugs. Among the three kinds of nanodrugs, NGO@DOX-PEG5K was superior to others. It suggested that after conjugating with PEG, the bond between DOX-PEG and NGO was weakened, which resulted in a better drug release and treatment effect. In summary, the NIR and pH dual-responsive NGO@DOX-PEG nanodrugs were developed by noncovalent modification, and it demonstrated excellent biocompatibility and photochemical therapeutic effect, presenting a promising candidate for antitumor therapy, especially NGO@DOX-PEG5K.
氧化石墨烯(GO)拥有巨大的表面积和对芳香族分子(如阿霉素(DOX))的高载药能力。然而,其生物相容性较差,在生理条件下可能会聚集。用亲水性聚合物对 GO 进行化学修饰,特别是 PEG 化,是提高其生物相容性的常用方法。但是 GO 的化学修饰很复杂,而且由于其功能基团的占据,其载药能力可能会降低。在这项研究中,合成了具有不同 PEG 分子量的 DOX-PEG 聚合物来修饰纳米氧化石墨烯(NGO),以同时实现 NGO 的溶解和 DOX 的高载药能力。结果表明,NGO@DOX-PEG 的药物释放具有 pH 敏感性。近红外(NIR)照射可以增强纳米药物的药物释放、细胞摄取、细胞毒性和核转位。在这三种纳米药物中,NGO@DOX-PEG5K 优于其他两种。这表明,PEG 化后,DOX-PEG 与 NGO 之间的键被削弱,导致更好的药物释放和治疗效果。总之,通过非共价修饰开发了 NIR 和 pH 双重响应的 NGO@DOX-PEG 纳米药物,表现出优异的生物相容性和光化学治疗效果,为抗肿瘤治疗提供了有前途的候选药物,特别是 NGO@DOX-PEG5K。