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无载体纳米药物用于安全有效的癌症治疗。

Carrier-free nanodrugs for safe and effective cancer treatment.

机构信息

School of Engineering, Institute for Bioengineering, The University of Edinburgh, King's Buildings, Mayfield Road, Edinburgh EH9 3JL, UK.

Department of Pharmacology, School of Pharmacy, Nantong University, 226000, Nantong, Jiangsu, PR China.

出版信息

J Control Release. 2021 Jan 10;329:805-832. doi: 10.1016/j.jconrel.2020.10.014. Epub 2020 Oct 9.

Abstract

Clinical applications of many anti-cancer drugs are restricted due to their hydrophobic nature, requiring use of harmful organic solvents for administration, and poor selectivity and pharmacokinetics resulting in off-target toxicity and inefficient therapies. A wide variety of carrier-based nanoparticles have been developed to tackle these issues, but such strategies often fail to encapsulate drug efficiently and require significant amounts of inorganic and/or organic nanocarriers which may cause toxicity problems in the long term. Preparation of nano-formulations for the delivery of water insoluble drugs without using carriers is thus desired, requiring elegantly designed strategies for products with high quality, stability and performance. These strategies include simple self-assembly or involving chemical modifications via coupling drugs together or conjugating them with various functional molecules such as lipids, carbohydrates and photosensitizers. During nanodrugs synthesis, insertion of redox-responsive linkers and tumor targeting ligands endows them with additional characteristics like on-target delivery, and conjugation with immunotherapeutic reagents enhances immune response alongside therapeutic efficacy. This review aims to summarize the methods of making carrier-free nanodrugs from hydrophobic drug molecules, evaluating their performance, and discussing the advantages, challenges, and future development of these strategies.

摘要

由于许多抗癌药物的疏水性,其临床应用受到限制,需要使用有害的有机溶剂进行给药,而且选择性和药代动力学差,导致非靶向毒性和低效治疗。已经开发了各种各样的基于载体的纳米粒子来解决这些问题,但这些策略往往不能有效地包封药物,并且需要大量的无机和/或有机纳米载体,这可能会导致长期的毒性问题。因此,需要开发一种不使用载体就能递送水不溶性药物的纳米制剂,这需要设计出具有高质量、稳定性和性能的产品的巧妙策略。这些策略包括简单的自组装或通过将药物偶联在一起或与各种功能分子(如脂质、碳水化合物和光敏剂)缀合来进行化学修饰。在纳米药物合成过程中,插入氧化还原响应性连接子和肿瘤靶向配体赋予它们额外的特性,如靶向递药,与免疫治疗试剂缀合可增强免疫反应和治疗效果。本综述旨在总结从疏水性药物分子制备无载体纳米药物的方法,评估它们的性能,并讨论这些策略的优势、挑战和未来发展。

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