硫黄
空位缺陷
免疫系统
风暴
路径(计算)
材料科学
纳米技术
化学工程
化学
医学
计算机科学
免疫学
工程类
物理
气象学
冶金
计算机网络
结晶学
作者
Ming Yang,Binbin Ding,Xinyu Ma,Jing Li,Di Han,Sainan Liu,Zhendong Liu,Jia Tan,Hao Chen,Pan Zheng,Ping’an Ma,Jun Lin
标识
DOI:10.1002/anie.202507502
摘要
Piezoecatalytic therapy is a novel therapeutic strategy that uses mechanical energy to drive catalytic reactions to generate cytotoxic reactive oxygen species (ROS). However, existing materials are limited by low intrinsic catalytic efficiency and a single route to ROS production. This makes it difficult to break through the antioxidant barrier of the tumor microenvironment, which severely limits the antitumor efficacy. Herein, we synthesized sulfur vacancy (Sv)‐engineered ZnIn2S4 nanosheets (ZIS‐2/4/8) by adjusting the concentrations of sulfur source thioacetamide (TAA). The increase in Sv concentration simultaneously achieved the optimization of the energy band structure and the enhancement of the piezoelectric performance (d33 from 21.6 to 46.7 mV/V). Under US irradiation, Sv‐ZnIn2S4 can efficiently generate ROS storms via multiple pathways, including ·O2‐, 1O2, ·OH and H2O2, which overcome the limitations of the tumor microenvironment and achieved effective tumor cell killing. In addition, the ROS storm induced by the US can also initiate immunogenic cell death (ICD), promoting dendritic cells (DCs) maturation and CD8⁺ T cells infiltration. This multi‐pathway ROS burst strategy not only breaks through tumor antioxidant defenses, but also induces ICD to form a cascade of immune responses. This demonstrates the advantages of combining piezocatalytic and immunotherapy.
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