基于氧化石墨烯和富勒烯的纳米共轭物与细胞抑制药物的生物医学应用。

A. Protas, E. A. Popova, O. Mikolaichuk, K. N. Semenov, V. V. Sharoyko, O. E. Molchanov, D. Maistrenko
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引用次数: 0

摘要

医学是应用现代纳米技术最有前景和最重要的领域之一。靶向给药、延长药物作用时间、诊断和制造医疗设备都是纳米材料大有可为的应用领域。碳纳米粒子具有优异的电气、机械和光学特性,而且易于功能化,因此成为开发生物医学应用新材料的理想候选材料。从当代文献分析,实验肿瘤学的大量研究致力于开发向生物靶点靶向输送抗肿瘤药物的方法,包括使用纳米粒子。因此,在细胞抑制药物与碳纳米结构共轭物的基础上创造抗肿瘤药物,是药物化学领域积极发展的方向之一。本综述讨论了基于氧化石墨烯和富勒烯的纳米复合材料与细胞抑制药物(如紫杉醇、卡铂、顺铂、多柔比星、吉西他滨等)的合成和性质研究方面的科学成就、其作用机制以及在生物医学中的实际应用。文章特别关注了对纳米载体的要求、将纳米复合材料定向输送到生物靶点的方法,以及在基于碳纳米结构的纳米共轭物成分中使用抗肿瘤药物的优势。此外,该综述还总结并指出了当前碳纳米结构在生物医学应用中面临的挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biomedical use of nanoconjugates based on graphene oxide and fullerenes with cytostatic drugs.
Medicine is one of the most promising and essential fields for the application of modern nanotechnologies. Targeted drug delivery, providing prolonged drug action, diagnostics, and the manufacturing of medical devices are among the promising applications of nanomaterials. The excellent electrical, mechanical, and optical properties of carbon nanoparticles, along with their ease of functionalization, have made them attractive candidates for the development of new materials for biomedical applications. As analyzed from contemporary literature, a significant amount of research in experimental oncology has been dedicated to the development of methods for targeted delivery of antitumor agents to biological targets, including the use of nanoparticles. Thus, the creation of antitumor drugs based on conjugates of cytostatic drugs with carbon nanostructures is one of the actively developing directions in medicinal chemistry. This review discusses scientific achievements in the synthesis and study of properties of nanocomposites based on graphene oxide and fullerenes with cytostatic drugs (such as paclitaxel, carboplatin, cisplatin, doxorubicin, gemcitabine, etc.), their mechanisms of action, and practical applications in biomedicine. Special attention is given to the requirements imposed on nanocarriers, methods of targeted delivery of nanocomposites to biological targets, and the advantages of using antitumor agents in the composition of nanoconjugates based on carbon nanostructures. Additionally, the review summarizes and iden- tifies the current challenges in the application of carbon nanostructures in biomedicine.
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