效应器
癌症免疫疗法
免疫系统
光热治疗
免疫疗法
癌症研究
癌细胞
癌症
体内
材料科学
癌症治疗
纳米技术
细胞毒性T细胞
细胞生物学
肿瘤消融
癌症治疗
活性氧
可控性
催化作用
内生
CTL公司*
树突状细胞
体外
生物
程序性细胞死亡
肿瘤微环境
细胞
PD-L1
作者
Yüe Zhao,Muchao Chen,Gaoxin Zhou,Yanli Zhao
摘要
PANoptosis has emerged as a compelling strategy to potentiate antitumor immune responses. However, achieving specific PANoptotic cancer-cell death while sparing normal tissues remains a central challenge, as current strategies are constrained by inadequate spatiotemporal controllability and insufficient generation of key effector species, particularly reactive oxygen species (ROS). In this study, we report a class of PANoptosis nanoinducer constructed from atomically dispersed high-entropy metal sites, enabling spatiotemporally controlled near-infrared (NIR)-amplified cancer immunotherapy. The unique high-entropy metal-site configuration of the resulting nanozymes (HENA@PEG) boosts catalytic efficiency through atomic-level synergism, while enabling precise, pH-gated control over ROS generation via catalytic activation. In addition, nanozyme-mediated photothermal therapy (PTT) not only induces direct tumor ablation but also supplies exogenous thermal energy to accelerate the catalytic reactions. The co-programmed integration of endogenous and exogenous activations confers tumor-site-adaptive biocatalysis, thereby enabling precise spatiotemporal induction of PANoptosis. Both in vitro and in vivo investigations reveal that the resulting nanoinducer effectively promotes dendritic cell maturation and cytotoxic T-cell activation, ultimately amplifying antitumor immune responses and markedly suppressing 4T1 tumor progression. Overall, this work establishes a high-entropy-engineered nanoinducer that overcomes the limitations of nonspecific PANoptosis and immune evasion, representing a promising avenue toward more efficient and precisely targeted cancer immunotherapy.
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