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载药型纳米药物递药系统的组装机制研究进展。

Advance Progress in Assembly Mechanisms of Carrier-Free Nanodrugs for Cancer Treatment.

机构信息

State Key Laboratory of Organic-Inorganic Composites, Beijing Laboratory of Biomedical Materials, Beijing University of Chemical Technology, Beijing 100029, China.

Department of Hepatology, Tongliao Infectious Disease Hospital, Tongliao 028000, China.

出版信息

Molecules. 2023 Oct 13;28(20):7065. doi: 10.3390/molecules28207065.

Abstract

Nanocarriers have been widely studied and applied in the field of cancer treatment. However, conventional nanocarriers still suffer from complicated preparation processes, low drug loading, and potential toxicity of carriers themselves. To tackle the hindrance, carrier-free nanodrugs with biological activity have received increasing attention in cancer therapy. Extensive efforts have been made to exploit new self-assembly methods and mechanisms to expand the scope of carrier-free nanodrugs with enhanced therapeutic performance. In this review, we summarize the advanced progress and applications of carrier-free nanodrugs based on different types of assembly mechanisms and strategies, which involved noncovalent interactions, a combination of covalent bonds and noncovalent interactions, and metal ions-coordinated self-assembly. These carrier-free nanodrugs are introduced in detail according to their assembly and antitumor applications. Finally, the prospects and existing challenges of carrier-free nanodrugs in future development and clinical application are discussed. We hope that this comprehensive review will provide new insights into the rational design of more effective carrier-free nanodrug systems and advancing clinical cancer and other diseases (e.g., bacterial infections) infection treatment.

摘要

纳米载体在癌症治疗领域得到了广泛的研究和应用。然而,传统的纳米载体仍然存在制备工艺复杂、载药量低以及载体本身潜在毒性等问题。为了解决这些障碍,具有生物活性的无载体纳米药物在癌症治疗中受到了越来越多的关注。人们已经做出了广泛的努力来开发新的自组装方法和机制,以扩大具有增强治疗性能的无载体纳米药物的范围。在这篇综述中,我们总结了基于不同组装机制和策略的无载体纳米药物的最新进展和应用,这些机制和策略涉及非共价相互作用、共价键和非共价相互作用的结合以及金属离子配位自组装。我们根据它们的组装和抗肿瘤应用详细介绍了这些无载体纳米药物。最后,讨论了无载体纳米药物在未来发展和临床应用中面临的前景和挑战。我们希望本综述能为更有效的无载体纳米药物系统的合理设计和推进癌症等临床疾病(如细菌感染)的治疗提供新的思路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/15d4/10608994/2b8188b873cd/molecules-28-07065-sch001.jpg

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