化学
激进的
氧化磷酸化
活性氧
细胞凋亡
线粒体
免疫疗法
癌症免疫疗法
DNA损伤
癌症治疗
生物物理学
免疫系统
细胞生物学
作用机理
DNA
生物化学
癌细胞
癌症治疗
氧化损伤
氧气
肿瘤微环境
机制(生物学)
癌症研究
电子传输链
癌症
肿瘤细胞
作者
Yuanying Li,Yunxiu Zhang,Renhao Nie,Changhan Yan,Yaolan Tao,Xiyin Liu,Huiying Ning,Ke Yuan,Zheng Liu,Zheng Liu,Qingyan Jia,Peng Li,Wei Huang
摘要
Free radicals, with unpaired valence electrons, hold significant potential in cancer treatment by inducing oxidative stress-mediated cellular damage. However, conventional oxygen-dependent radicals encounter significant barriers within the tumor microenvironment. Herein, we propose an electroacupuncture-driven strategy that synergistically integrates organic radical-mediated electrodynamic therapy (EDT) with cGAS-STING pathway-primed immunotherapy. Mitochondrially engineered viologen derivatives can generate stable, oxygen-independent organic radicals under the influence of electroacupuncture. This mechanism leads to a depletion of NADH levels, disrupts the mitochondrial electron transport chain, and induces oxidative stress, resulting in the direct eradication of tumor cells. Concurrently, the accumulation of reactive oxygen species induces the disruption of the mitochondrial cristae architecture, resulting in the release of mitochondrial DNA fragments into the cytoplasm. These fragments subsequently activate the cGAS-STING pathway, thereby promoting expression of type-I interferons, maturation of dendritic cells, proliferation of CD8+ T cells, and natural killer cells, as well as tumor infiltration, ultimately orchestrating a systemic antitumor immune response. This strategy demonstrates highly efficient tumor suppression with minimal toxicity by integrating spatiotemporally precise organic radical-mediated EDT- and STING-dependent immunity, offering a potential strategy to overcome microenvironmental barriers and enhance therapeutic efficacy.
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