材料科学
上睑下垂
纳米技术
活性氧
生物相容性
Boosting(机器学习)
细胞凋亡
程序性细胞死亡
化学
生物化学
机器学习
计算机科学
冶金
作者
Zeyu Wang,Xue Wang,Hongsheng Fang,Xinran Song,Li Ding,Meiqi Chang,Yan Hao,Yu Chen
标识
DOI:10.1002/adma.202414432
摘要
Abstract Sonocatalytic therapy is gaining interest for its non‐invasive nature, precise control, and excellent tissue penetration, making it a promising approach for treating malignant tumors. While defect engineering enhances electron and hole separation to boost reactive oxygen species (ROS) generation, challenges in constructing effective hole traps compared to electron traps severely limit ROS production. In this study, 2D ZnIn 2 S 4 ‐V In nanosheets enriched are rationally designed with In vacancies for the efficient capture of electrons and holes, which has achieved substantial sonocatalytic performance in suppressing tumor growth. Compared to pristine ZnIn 2 S 4 nanosheets, which possess a periodic electrostatic potential inherent in their structure, In vacancies effectively disrupt this potential field, promote the simultaneous separation and migration of charge carriers, and inhibit their recombination, thereby boosting ROS production and inducing tumor cell pyroptosis via the ROS‐NLRP3‐caspase‐1‐GSDMD pathway under ultrasound (US) irradiation. Furthermore, both pristine ZnIn 2 S 4 and ZnIn 2 S 4 ‐V In nanosheets exhibited remarkable biocompatibility. In vitro and in vivo antineoplastic experiments demonstrate that this sonocatalytic approach effectively promotes tumor elimination, underscoring the critical importance of defect‐engineered optimization in sonocatalytic tumor therapy.
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