线粒体
化学
免疫系统
光动力疗法
光敏剂
活性氧
癌症免疫疗法
癌细胞
癌症研究
细胞生物学
癌症
钙
免疫疗法
生物物理学
肿瘤细胞
生物相容性材料
纳米技术
钙信号传导
细胞内
干扰(通信)
细胞凋亡
RNA干扰
癌症治疗
生物学中的钙
纳米材料
程序性细胞死亡
细胞培养
细胞毒性
细胞
Jurkat细胞
过程(计算)
癌症治疗
溶解
纳米颗粒
作者
Jing Qian,Mengnan Zhao,Yan Tang,Tao Chen,Mingyan Sun,Dandan Mi,Lan Zou,Rujing Wang,Jun Lu,Sanjun Shi
标识
DOI:10.1016/j.apsb.2025.10.046
摘要
Interference with calcium homeostasis provokes tumor cell death and immune response, providing a novel direction for tumor immunotherapy as a promising cancer treatment strategy. Nevertheless, most reported Ca2+-overloaded nanoinducers encounter challenges such as intricate preparation procedures, safety concerns arising from inorganic material input, and limited anti-tumor efficiency. Herein, we synthesized a biocompatible and pH-sensitive Ca-doped cyclodextrin metal-organic framework (Ca/K-MOF) as a carrier, which was then loaded with photosensitizer hypericin (HY) via a simple one-pot synthesis to form HY@Ca/K-MOF. To enhance the stability both in vitro and in vivo, we coated HY@Ca/K-MOF with a hydrophilic layer of PEG (PEGHY@Ca/K-MOF). When exposed to 590 nm photoirradiation, PEGHY@Ca/K-MOF, with its pH-responsive dissociation, the Ca2+ and HY mediators released at the tumor site share the responsibility of triggering intracellular Ca2+ disturbances, which amplified the production of reactive oxygen species (ROS) and led to mitochondrial calcium overload through modulating mitochondrial MICU1 function. Under photocontrol, this interplay between ROS generation and mitochondrial calcium overload created a bidirectional amplification effect, where each process reinforced the other, subsequently eliciting a pyroptosis-evoked immune response. Significantly, this newly constructed delivery platform effectively suppressed both primary and distant tumors without the need for additional immunological interventions. In summary, this Ca2+-doped MOF-based nanomaterial provides a promising approach for efficient tumor photo-controlled mitochondrial Ca2+ overload-pyroptosis immunotherapy.
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