内吞作用
化学
生物物理学
铜
谷胱甘肽
过氧化物酶
肿瘤细胞
渗透(战争)
谷胱甘肽过氧化物酶
催化作用
细胞
活性氧
生物化学
细胞膜
肿瘤微环境
胞浆
作用机理
膜
肿瘤缺氧
药理学
细胞生物学
癌症研究
细胞内
细胞损伤
小泡
酶
限制
细胞毒性
毒性
作者
Xinyi Shi,Tianwei Song,Yinglong Wu,Xiangyang Li,Xiangfu Meng,Yong Qian,Chenyang Bi,Dongdong Wang,Junchao Qian,Yanli Zhao,Hui Wang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-12-01
卷期号:19 (49): 41850-41863
被引量:9
标识
DOI:10.1021/acsnano.5c16218
摘要
Single-atom nanozymes (SAEs) with a high catalytic performance have received worldwide attention in tumor therapy. The current SAEs still suffer from a low cell penetration efficiency and tumor accumulation, limiting their therapeutic effect during treatment. Herein, a typical urchin-like carbon-supported copper single-atom nanozyme (UCCSE) is designed for enhanced cascade chemodynamic therapy. The UCCSE is synthesized through a one-step carbonization-reduction strategy using dopamine and copper chloride as precursors. The structure endows UCCSE with enhanced membrane penetration via endocytosis and tumor cell uptake abilities. Upon internalization, the as-prepared UCCSE possesses peroxidase (POD)-mimicking activity for continuous hydroxyl radical (•OH) generation as well as glutathione peroxidase (GPx)-mimicking activity for glutathione depletion. Both cellular and animal experiments exhibit noteworthy needling-length-dependent tumor suppression effects with negligible systemic toxicity. This work provides a simple paradigm for enhanced tumor catalytic therapy through rational regulation of morphology.
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