Doxorubicin-loaded graphene oxide nanocomposites in cancer medicine: stimuli-responsive carriers, co-delivery and suppressing resistance

纳米载体 光热治疗 阿霉素 药物输送 材料科学 癌细胞 纳米技术 表面改性 毒品携带者 细胞毒性 癌症 靶向给药 化学 医学 化疗 体外 生物化学 外科 物理化学 内科学
作者
Milad Ashrafizadeh,Hamidreza Saebfar,Mohammad Hossein Gholami,Kiavash Hushmandi,Amirhossein Zabolian,Pooria Bikarannejad,Mehrdad Hashemi,Salman Daneshi,Sepideh Mirzaei,Esmaeel Sharifi,Alan Prem Kumar,Haroon Khan,Hamid Heydari Sheikh Hossein,Massoud Vosough,Mohammad Rabiee,Vijay Kumar Thakur,Pooyan Makvandi,Yogendra Kumar Mishra,Franklin R. Tay,Yuzhuo Wang,Ali Zarrabi,Gorka Orive,Ebrahim Mostafavi
出处
期刊:Expert Opinion on Drug Delivery [Informa]
卷期号:19 (4): 355-382 被引量:53
标识
DOI:10.1080/17425247.2022.2041598
摘要

The application of doxorubicin (DOX) in cancer therapy has been limited due to its drug resistance and poor internalization. Graphene oxide (GO) nanostructures have the capacity for DOX delivery while promoting its cytotoxicity in cancer.The favorable characteristics of GO nanocomposites, preparation method, and application in cancer therapy are described. Then, DOX resistance in cancer, GO-mediated photothermal therapy, and DOX delivery for cancer suppression are described. Preparation of stimuli-responsive GO nanocomposites, surface functionalization, hybrid nanoparticles, and theranostic applications are emphasized in DOX chemotherapy.GO nanoparticle-based photothermal therapy maximizes the anti-cancer activity of DOX against cancer cells. Besides DOX delivery, GO nanomaterials are capable of loading anti-cancer agents and genetic tools to minimize drug resistance and enhance the cytolytic impact of DOX in cancer eradication. To enhance DOX accumulation, stimuli-responsive (redox-, light-, enzyme- and pH-sensitive) GO nanoparticles have been developed for DOX delivery. Development of targeted delivery of DOX-loaded GO nanomaterials against cancer cells may be achieved by surface modification of polymers such as polyethylene glycol, hyaluronic acid, and chitosan. DOX-loaded GO nanoparticles have demonstrated theranostic potential. Hybridization of GO with other nanocarriers such as silica and gold nanoparticles further broadens their potential anti-cancer therapy applications.
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