胶质母细胞瘤
放射治疗
免疫
癌症研究
医学
免疫系统
辐射耐受性
细胞免疫
细胞免疫
免疫疗法
免疫学
巨噬细胞
体液免疫
先天免疫系统
作者
Ke Ren,Ziyang Yuan,Lei Lei,Ziyuan Xiao,Ningyi Ma,Guodong Wang,Ningyi Sun,Tai Yang,Zhiyong Chang,Liang Qin,Xu Ying,Dahai Yu,Lizhou Jia,Haishi Qiao
标识
DOI:10.1038/s41467-026-72067-7
摘要
Radiotherapy plays a crucial role in antitumor immunity in glioblastoma, yet its efficacy is often limited, resulting in tumor recurrence. Here, we engineer a macrophage membrane-camouflaged Bacillus Calmette-Guérin (BCG) via bioorthogonal chemistry to enhance radiotherapy against glioblastoma. This engineered BCG penetrates the blood-brain barrier, targets tumors, and alleviates hypoxia through intrinsic catalase activity, exerting antitumor effects in both murine orthotopic glioblastoma and humanized mouse models. Notably, it also initiates trained immunity in tumor-associated macrophages. Depletion and adoptive transfer of tumor-associated macrophages demonstrate that trained immunity promotes inflammatory cytokine production, reactive oxygen species release, phagocytosis and the recruitment of CD8+ T cells, ultimately amplifying immune responses to radiotherapy. Moreover, immune checkpoint blockade further augments the antitumor efficacy of engineered BCG combined with radiotherapy. Here, we show that trained immunity in tumor-associated macrophages is a promising strategy to sensitize glioblastoma to radiotherapy and improve treatment outcomes. Radiotherapy (RT) is standard-of-care in cancer management; however, RT efficacy remains limited. Here, the authors test whether membrane camouflaged BCG bacteria (MBCG) enhance response to RT in preclinical models of glioblastoma. MBCG efficiently targets tumor tissues, induces trained immunity in tumor-associated macrophages, and enhances the RT-induced anti-tumor responses.
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