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推进癌症基因治疗:纳米颗粒递送系统的新兴作用。

Advancing cancer gene therapy: the emerging role of nanoparticle delivery systems.

作者信息

Wang Maoze, Liu Huina, Huang Jinling, Cai Ting, Xu Zhi Ping, Zhang Lingxiao

机构信息

Guoke Ningbo Life Science and Health Industry Research Institute, Ningbo, 315040, China.

Institute of Chemical Biology, Shenzhen Bay Laboratory, Shenzhen, 518107, China.

出版信息

J Nanobiotechnology. 2025 May 20;23(1):362. doi: 10.1186/s12951-025-03433-8.

Abstract

Gene therapy holds immense potential due to its ability to precisely target oncogenes, making it a promising strategy for cancer treatment. Advances in genetic science and bioinformatics have expanded the applications of gene delivery technologies beyond detection and diagnosis to potential therapeutic interventions. However, traditional gene therapy faces significant challenges, including limited therapeutic efficacy and the rapid degradation of genetic materials in vivo. To address these limitations, multifunctional nanoparticles have been engineered to encapsulate and protect genetic materials, enhancing their stability and therapeutic effectiveness. Nanoparticles are being extensively explored for their ability to deliver various genetic payloads-including plasmid DNA, messenger RNA, and small interfering RNA-directly to cancer cells. This review highlights key gene modulation strategies such as RNA interference, gene editing systems, and chimeric antigen receptor (CAR) technologies, alongside a diverse array of nanoscale delivery systems composed of polymers, lipids, and inorganic materials. These nanoparticle-based delivery platforms aim to improve targeted transport of genetic material into cancer cells, ultimately enhancing the efficacy of cancer therapies.

摘要

基因疗法因其能够精确靶向癌基因而具有巨大潜力,使其成为一种很有前景的癌症治疗策略。遗传科学和生物信息学的进展已将基因递送技术的应用从检测和诊断扩展到潜在的治疗干预。然而,传统基因疗法面临重大挑战,包括治疗效果有限以及体内遗传物质快速降解。为了解决这些局限性,人们设计了多功能纳米颗粒来包裹和保护遗传物质,提高其稳定性和治疗效果。纳米颗粒因其能够将包括质粒DNA、信使RNA和小干扰RNA在内的各种基因有效载荷直接递送至癌细胞的能力而受到广泛探索。本综述重点介绍了关键的基因调控策略,如RNA干扰、基因编辑系统和嵌合抗原受体(CAR)技术,以及由聚合物、脂质和无机材料组成的各种纳米级递送系统。这些基于纳米颗粒的递送平台旨在改善遗传物质向癌细胞的靶向运输,最终提高癌症治疗的疗效。

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