← 返回

纳米材料在癌症免疫治疗中的应用综合综述:临床使用的利弊

英文原题:A comprehensive review of using nanomaterials in cancer immunotherapy: Pros and Cons of clinical usage.

查看英文原题

A comprehensive review of using nanomaterials in cancer immunotherapy: Pros and Cons of clinical usage.

PubMed 2025/06/09(内容时间) 3 Biotech Q3 · IF 3.1(JCR 2025)

分数与星级只用于站内排序 —— 不代表疗效、安全性或个人适用性。

中文摘要

癌症免疫治疗利用免疫系统选择性摧毁恶性细胞。其有效性常因免疫系统激活不足、肿瘤免疫逃逸以及脱靶损伤而受到削弱。纳米技术有潜力通过改善治疗药物对免疫系统的靶向和递送来解决这些挑战。本综述表明,纳米颗粒可显著增强癌症诊断,协助被动和主动肿瘤靶向,并改善免疫检查点抑制剂、癌症疫苗和过继细胞疗法的递送。研究证明,纳米颗粒的尺寸和表面电荷,以及其组分的功能化,会影响疗法的递送及由此产生的治疗效果。比较分析表明,与无机纳米颗粒相比,如 PLGA 等有机纳米颗粒可能具有较低生物相容性和较高免疫毒性。纳米颗粒与放疗联合使用还可增强肿瘤放射增敏并调节免疫系统,从而在临床前模型中导致更强的肿瘤消退和更好的生存。

然而,关于纳米颗粒免疫毒性、聚集和器官特异性蓄积仍存在争议,这些问题与其组成和表面性质有关。生产可扩展性和监管障碍进一步限制了临床转化。

总体而言,优化纳米颗粒设计和靶向策略对于最大化治疗疗效和安全性至关重要,并支持个性化癌症免疫治疗的发展。

展开英文摘要原文

Cancer immunotherapy utilizes the immune system to selectively destroy malignant cells. Its effectiveness is often undermined by inadequate immune system activation, immune evasion by tumors, and off-target damage. Nanotechnology has the potential to address these challenges by improving the targeting and delivery of therapeutic agents to the immune system. This review shows that nanoparticles can significantly enhance cancer diagnostics, assist in both passive and active tumor targeting, and improve the delivery of immune checkpoint inhibitors, cancer vaccines, and adoptive cell therapies.

It is demonstrated that the size and surface charge of nanoparticles, along with functionalization of their components, impact the delivery of therapies and the resulting therapeutic effects. Comparative analyses indicate that organic nanoparticles like PLGA may have lower biocompatibility and higher immunotoxicity compared to inorganic nanoparticles.

The use of nanoparticles in combination with radiotherapy also enhances tumor radiosensitization and modulates the immune system, leading to greater tumor regression and improved survival in preclinical models.

However, controversies remain regarding nanoparticle immunotoxicity, aggregation, and organ-specific accumulation, which are related to their composition and surface properties. Manufacturing scalability and regulatory hurdles further limit clinical translation.

Overall, optimizing nanoparticle design and targeting strategies is essential for maximizing therapeutic efficacy and safety, supporting the advancement of personalized cancer immunotherapies.

论文信息

作者
Rashid H、Acharya S、Muhammad H、Aziz MA
单位
Cancer Nanomedicine Lab, Interdisciplinary Nanotechnology Center, Zakir Husain College of Engineering and Technology, Aligarh Muslim University, Aligarh, 202002 India.India
文献类型
综述
期刊
3 Biotech2025 Jul
原文标识
PubMed 40502964 · DOI 10.1007/s13205-025-04362-x