癌症
免疫系统
癌症免疫疗法
免疫疗法
肿瘤微环境
细菌外膜
癌症治疗
癌症疫苗
纳米技术
癌细胞
转化式学习
医学
癌症研究
生物
计算生物学
癌症治疗
细胞外小泡
机制(生物学)
药物输送
临床试验
生物信息学
接种疫苗
免疫学
微泡
作者
Jiabeini Zhang,Tianyu Shao,Fengjiang Qu,Caiyun Bai,Sijie Li,Pin Gao,Wenna Li,Keman Cheng,Xiao Zhao,Zhimin Fan
标识
DOI:10.1002/advs.202521684
摘要
Cancer immunotherapy is increasingly moving toward personalized, precision-based strategies, with cancer vaccines emerging as a promising approach to reshape treatment. However, despite their potential, current tumor vaccines often yield limited clinical responses and subpar immunogenicity, underscoring the urgent need for innovative delivery systems to enhance immune activation. Bacterial outer membrane vesicles (OMVs), which possess natural immunomodulatory properties and impressive engineering flexibility, have attracted attention as versatile platforms for vaccine development and bioengineering applications. This review thoroughly summarizes recent advances in using OMVs to enhance the effectiveness of cancer vaccines. First, we explain the key biological features of OMVs that support their immunotherapeutic potential. Next, we carefully analyze the primary mechanisms by which OMVs enhance immune responses, as well as cutting-edge engineering strategies to improve their safety, immunogenicity, and specificity. Additionally, we discuss the significant challenges that hinder the clinical use of OMV-based cancer vaccines and provide a comprehensive review of current progress and future outlooks. Looking forward, combining artificial intelligence, tumor microenvironment profiling, and neoantigen discovery is expected to drive the development of next-generation, personalized OMV-based immunotherapies. Overall, OMVs stand out as a transformative platform capable of overcoming major obstacles in cancer vaccine development and pushing forward future cancer immunotherapy.
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