前列腺癌
癌症研究
免疫疗法
肿瘤微环境
化学
癌症免疫疗法
细胞内
重编程
上睑下垂
癌细胞
前列腺
癌症
过氧化氢
免疫系统
细胞
细胞生物学
基因敲除
纳米载体
下调和上调
T细胞
细胞存活
细胞毒性
NADPH氧化酶
肿瘤细胞
黑色素瘤
作者
Bo Xu,Bin Wang,Wei Zhang,B Zhang,Xiaofeng Wang,Siqi Liu,Yinzhe Wang,L W Yang,Lianchao Yang,Rui Niu,Chunxi Wang,Chunxi Wang,Yinghui Wang,Yinghui Wang
摘要
ABSTRACT Immunotherapy for prostate cancer is severely restricted by the immunosuppressive tumor microenvironment (TME) and the intrinsic antioxidant defense systems of tumor cells. To address these challenges, we develop an efficient copper‐based single‐atom nanozyme platform (CuN 3 Cl‐BAY@COD) via a facile axial coordination and defect engineering strategy to boost immunotherapy by driving synergistic disulfidptosis and pyroptosis. This dual‐engineering strategy effectively regulates the electronic and geometric structures of Cu sites, resulting in significantly improved multienzyme‐mimicking activities. Such enhanced multienzyme‐mimicking activities endow CuN 3 Cl‐BAY@COD with the robust capacity to disrupt intracellular redox homeostasis and amplify the disulfide stress mediated by BAY‐876, inducing efficient tumor cell pyroptosis and disulfidptosis. The loaded cholesterol oxidase degrades cholesterol to inhibit tumor cell invasion while elevating intracellular hydrogen peroxide levels to exacerbate pyroptosis. In summary, by coupling metabolic reprogramming with dual immunogenic cell death, this engineered nanoplatform overcomes TME resistance barriers, providing a robust strategy for prostate cancer immunotherapy.
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