Nanomedicine Research Laboratory, Department of Pharmacy, Birla Institute of Technology & Science-Pilani, Hyderabad Campus, Jawahar Nagar, Medchal, Hyderabad 500078, Telangana, India.
Epigenetic Research Laboratory, Department of Pharmacy, Birla Institute of Technology & Science-Pilani, Hyderabad Campus, Jawahar Nagar, Medchal, Hyderabad 500078, Telangana, India.
J Control Release. 2022 Oct;350:26-59. doi: 10.1016/j.jconrel.2022.08.011. Epub 2022 Aug 13.
Recent advancements in nanotechnology have enabled us to develop sophisticated multifunctional nanoparticles or nanosystems for targeted diagnosis and treatment of several illnesses, including cancers. To effectively treat any solid tumor, the therapy should preferably target just the malignant cells/tissue with minor damage to normal cells/tissues. Graphene oxide (GO) nanoparticles have gained considerable interest owing to their two-dimensional planar structure, chemical/mechanical stability, excellent photosensitivity, superb conductivity, high surface area, and good biocompatibility in cancer therapy. Many compounds have been functionalized on the surface of GO to increase their biological applications and minimize cytotoxicity. The review presents an overview of the physicochemical characteristics, strategies for various modifications, toxicity and biocompatibility of graphene and graphene oxide, current trends in developing GO-based nano constructs as a drug delivery cargo and other biological applications, including chemo-photothermal therapy, chemo-photodynamic therapy, bioimaging, and theragnosis in cancer. Further, the review discusses the challenges and opportunities of GO, GO-based nanomaterials for the said applications. Overall, the review focuses on the therapeutic potential of strategically developed GO nanomedicines and comprehensively discusses their opportunities and challenges in cancer therapy.
最近的纳米技术进展使我们能够开发出复杂的多功能纳米粒子或纳米系统,用于针对包括癌症在内的几种疾病的靶向诊断和治疗。为了有效地治疗任何实体瘤,治疗方法最好只针对恶性细胞/组织,而对正常细胞/组织的损伤较小。氧化石墨烯(GO)纳米粒子因其二维平面结构、化学/机械稳定性、优异的光敏性、超高导电性、大比表面积和良好的生物相容性而在癌症治疗中引起了极大的兴趣。许多化合物已经在 GO 的表面进行了功能化,以增加它们的生物应用并最小化细胞毒性。本综述介绍了石墨烯和氧化石墨烯的物理化学特性、各种修饰策略、毒性和生物相容性、基于 GO 的纳米结构作为药物输送载体的最新趋势以及其他生物应用,包括化学-光热治疗、化学-光动力治疗、生物成像和癌症的治疗诊断。此外,本综述还讨论了 GO 及其基于纳米材料在这些应用中面临的挑战和机遇。总的来说,本综述重点关注了经过策略性开发的 GO 纳米药物的治疗潜力,并全面讨论了它们在癌症治疗中的机遇和挑战。
J Control Release. 2022-10
Acta Biomater. 2013-8-16
J Control Release. 2023-2
Biomaterials. 2014-4-22
Anticancer Agents Med Chem. 2020
Front Toxicol. 2025-7-30
J Mater Sci Mater Med. 2025-6-13
Front Chem. 2025-5-26
Materials (Basel). 2025-5-6
Nanomaterials (Basel). 2025-3-28