先天免疫系统
化学
免疫系统
癌症研究
肿瘤微环境
癌症
纳米技术
炎症
放射增敏剂
抗辐射性
兴奋剂
获得性免疫系统
金属有机骨架
先天性淋巴细胞
细胞生物学
树突状细胞
癌细胞
共价键
免疫原性细胞死亡
DNA损伤
癌症治疗
干扰素
作者
Wenyao Zhen,Wang‐Kang Han,Tianzhi Zhao,Rebeka Rita Reszegi,Zhenni Wei,Zhi-Guo Gu,Jingjing Zhang,X. Chen
摘要
Radiotherapy (RT) remains a cornerstone of cancer treatment but is often limited by tumor radioresistance and an immune-suppressive microenvironment. An effective strategy that combines radiosensitization with innate immune activation provides opportunities to overcome the limitations faced by traditional RT. However, traditional STING agonists face challenges of instability, rapid clearance, poor tumor delivery, and systemic toxicity. To address these limitations, we developed a three-dimensional iridium-based metal-covalent organic framework (3D Ir-MCOF) loaded with 4-(5,6-dimethoxybenzo[b]thiophen-2-yl)-4-oxobutanoic acid (MSA-2) that simultaneously enables radiosensitization and tumor-specific innate immune activation. The framework incorporates high-Z iridium for enhanced X-ray energy deposition and ROS generation, while its porous architecture allows efficient loading and pH-responsive release of MSA-2 in the acidic tumor microenvironment. By synchronizing DNA damage with innate immune activation, 3D Ir-MCOFs induce dendritic cell maturation, type I interferon signaling, and T-cell infiltration, effectively converting "cold" tumors into "hot" ones. This work highlights 3D MCOFs as a multifunctional nanoplatform enabling concurrent next-generation radiosensitization and precise immune agonist delivery.
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