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基于壳聚糖的智能刺激响应性纳米粒子用于基因递送和基因治疗:癌症治疗的最新进展。

Chitosan-based smart stimuli-responsive nanoparticles for gene delivery and gene therapy: Recent progresses on cancer therapy.

机构信息

Nanotechnology Department, School of Advanced Technologies, Iran University of Science and Technology (IUST), Tehran 1684613114, Iran.

Biomaterials and Tissue Engineering Research Group, Interdisciplinary Technologies Department, Breast Cancer Research Center, Motamed Cancer Institute, ACECR, Tehran, Iran.

出版信息

Int J Biol Macromol. 2024 Oct;278(Pt 3):134542. doi: 10.1016/j.ijbiomac.2024.134542. Epub 2024 Aug 11.

Abstract

Recent cancer therapy research has found that chitosan (Ch)-based nanoparticles show great potential for targeted gene delivery. Chitosan, a biocompatible and biodegradable polymer, has exceptional properties, making it an ideal carrier for therapeutic genes. These nanoparticles can respond to specific stimuli like pH, temperature, and enzymes, enabling precise delivery and regulated release of genes. In cancer therapy, these nanoparticles have proven effective in delivering genes to tumor cells, slowing tumor growth. Adjusting the nanoparticle's surface, encapsulating protective agents, and using targeting ligands have also improved gene delivery efficiency. Smart nanoparticles based on chitosan have shown promise in improving outcomes by selectively releasing genes in response to tumor conditions, enhancing targeted delivery, and reducing off-target effects. Additionally, targeting ligands on the nanoparticles' surface increases uptake and effectiveness. Although further investigation is needed to optimize the structure and composition of these nanoparticles and assess their long-term safety, these advancements pave the way for innovative gene-focused cancer therapies.

摘要

最近的癌症治疗研究发现,基于壳聚糖(Ch)的纳米粒子在靶向基因传递方面显示出巨大的潜力。壳聚糖是一种生物相容性和可生物降解的聚合物,具有特殊的性质,使其成为治疗基因的理想载体。这些纳米粒子可以响应特定的刺激,如 pH 值、温度和酶,从而实现基因的精确传递和调控释放。在癌症治疗中,这些纳米粒子已被证明可以有效地将基因递送到肿瘤细胞中,减缓肿瘤生长。调整纳米粒子的表面、封装保护剂和使用靶向配体也提高了基因传递效率。基于壳聚糖的智能纳米粒子通过选择性地在肿瘤条件下释放基因,增强靶向传递,减少脱靶效应,显示出改善治疗效果的潜力。此外,纳米粒子表面的靶向配体增加了摄取和有效性。虽然需要进一步研究来优化这些纳米粒子的结构和组成,并评估其长期安全性,但这些进展为创新的基于基因的癌症治疗方法铺平了道路。

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