光热治疗
石墨烯
纳米技术
材料科学
癌症治疗
药物输送
癌症治疗
癌症
纳米材料
纳米医学
医学
纳米颗粒
内科学
作者
A. Keyvani,Parizad Mohammadnejad,Hamidreza Pazoki‐Toroudi,Irati Pérez Gilabert,Tianjiao Chu,Bella B. Manshian,Stefaan J. Soenen,Beheshteh Sohrabi
标识
DOI:10.1021/acsami.4c15536
摘要
Combination therapy, which involves using multiple therapeutic modalities simultaneously or sequentially, has become a cornerstone of modern cancer treatment. Graphene-based nanomaterials (GBNs) have emerged as versatile platforms for drug delivery, gene therapy, and photothermal therapy. These materials enable a synergistic approach, improving the efficacy of treatments while reducing side effects. This review explores the roles of graphene, graphene oxide (GO), and graphene quantum dots (GQDs) in combination therapies and highlights their potential to enhance immunotherapy and targeted cancer therapies. The large surface area and high drug-loading capacity of graphene facilitate the codelivery of multiple therapeutic agents, promoting targeted and sustained release. GQDs, with their unique optical properties, offer real-time imaging capabilities, adding another layer of precision to treatment. However, challenges such as biocompatibility, long-term toxicity, and scalability need to be addressed to ensure clinical safety. Preclinical studies show promising results for GBNs, suggesting their potential to revolutionize cancer treatment through innovative combination therapies.
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