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恢复卡介苗对膀胱癌的免疫治疗:纳米技术与生物工程方法

Revitalizing Bacillus Calmette-Guérin Immunotherapy for Bladder Cancer: Nanotechnology and Bioengineering Approaches.

作者信息

Lv Maoxin, Shang Shihao, Liu Kepu, Wang Yuliang, Xu Peng, Song Hao, Zhang Jie, Sun Zelong, Yan Yuhao, Zhu Zheng, Wu Hao, Li Hao

机构信息

Department of Urology, First Affiliated Hospital, Kunming Medical University, Kunming 650000, China.

School of Basic Medical Sciences, Key Laboratory of Environment and Genes Related to Diseases of Ministry of Education, Xi'an Jiaotong University, Xi'an 710061, China.

出版信息

Pharmaceutics. 2024 Aug 15;16(8):1067. doi: 10.3390/pharmaceutics16081067.

Abstract

Bacillus Calmette-Guérin (BCG) immunotherapy has been a cornerstone treatment for non-muscle-invasive bladder cancer for decades and still faces challenges, such as severe immune adverse reactions, which reduce its use as a first-line treatment. This review examines BCG therapy's history, mechanisms, and current status, highlighting how nanotechnology and bioengineering are revitalizing its application. We discuss novel nanocarrier systems aimed at enhancing BCG's efficacy while mitigating specific side effects. These approaches promise improved tumor targeting, better drug loading, and an enhanced stimulation of anti-tumor immune responses. Key strategies involve using materials such as liposomes, polymers, and magnetic particles to encapsulate BCG or functional BCG cell wall components. Additionally, co-delivering BCG with chemotherapeutics enhances drug targeting and tumor-killing effects while reducing drug toxicity, with some studies even achieving synergistic effects. While most studies remain experimental, this research direction offers hope for overcoming BCG's limitations and advancing bladder cancer immunotherapy. Further elucidation of BCG's mechanisms and rigorous safety evaluations of new delivery systems will be crucial for translating these innovations into clinical practice.

摘要

卡介苗(BCG)免疫疗法数十年来一直是非肌肉浸润性膀胱癌的基石治疗方法,但仍面临挑战,例如严重的免疫不良反应,这限制了其作为一线治疗方法的使用。本综述考察了卡介苗疗法的历史、机制和现状,重点介绍了纳米技术和生物工程如何使其应用重新焕发生机。我们讨论了旨在提高卡介苗疗效同时减轻特定副作用的新型纳米载体系统。这些方法有望改善肿瘤靶向性、提高药物负载量并增强抗肿瘤免疫反应的刺激。关键策略包括使用脂质体、聚合物和磁性颗粒等材料来包裹卡介苗或功能性卡介苗细胞壁成分。此外,将卡介苗与化疗药物联合递送可增强药物靶向性和肿瘤杀伤效果,同时降低药物毒性,一些研究甚至实现了协同效应。虽然大多数研究仍处于实验阶段,但这一研究方向为克服卡介苗的局限性和推进膀胱癌免疫治疗带来了希望。进一步阐明卡介苗的机制以及对新递送系统进行严格的安全性评估对于将这些创新转化为临床实践至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/624a/11359013/7dcca1e24beb/pharmaceutics-16-01067-g001.jpg

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