Liu Cui-Cui, Zhao Jing-Jing, Zhang Rui, Li Hui, Chen Bo, Zhang Ling-Ling, Yang Hao
Translational Medicine Center, Hong-Hui Hospital, Xi'an Jiaotong University College of MedicineXi'an 710054, China.
Joint Surgery, Hong-Hui Hospital, Xi'an Jiaotong University College of MedicineXi'an 710054, China.
Am J Transl Res. 2017 Dec 15;9(12):5197-5219. eCollection 2017.
Among various nanomaterials, graphene and its derivatives have attracted considerable research interest in diverse application areas-including nanomedicine-because of their extraordinary physical, chemical, and optical properties. Intensive research is underway to investigate the biomedical application of graphene and graphene-based nanosystems as drug-delivery vehicles for cancer therapy, and this is considered as one of the novel therapeutic approaches for performing on-demand chemotherapy coupled with photothermal therapy or photodynamic therapy. Here, we systematically summarize recent progress in the synthesis and functionalization of graphene by using a vast range of materials, including small molecules, polymers, and biomolecules, in order to overcome the inherent drawbacks of graphene oxide (GO) nanocarriers and thereby make these nanocarriers suitable for delivering chemotherapeutic agents, genes, and short interfering RNAs. Moreover, we address the opportunities and challenges associated with future clinical application of GO for cancer therapy.
在各种纳米材料中,石墨烯及其衍生物因其非凡的物理、化学和光学性质,在包括纳米医学在内的不同应用领域引起了相当大的研究兴趣。目前正在进行深入研究,以探究石墨烯及基于石墨烯的纳米系统作为癌症治疗药物递送载体的生物医学应用,这被视为一种结合光热疗法或光动力疗法进行按需化疗的新型治疗方法。在此,我们系统地总结了通过使用包括小分子、聚合物和生物分子在内的多种材料对石墨烯进行合成和功能化的最新进展,以克服氧化石墨烯(GO)纳米载体的固有缺点,从而使这些纳米载体适合递送化疗药物、基因和短干扰RNA。此外,我们还讨论了GO在癌症治疗未来临床应用中所面临的机遇和挑战。