光热治疗
材料科学
声动力疗法
纳米技术
活性氧
异质结
光热效应
催化作用
化学
光电子学
生物化学
作者
Lang Yan,Zhi Cao,Lijun Ren,Teng Zhang,Jinyan Hu,Ji‐Kuai Chen,Xiaofang Zhang,Bing Liu,Chuanqi Feng,Jiangbo Zhu,Bijiang Geng
标识
DOI:10.1002/adhm.202302190
摘要
Abstract Although low‐cost nanozymes with excellent stability have demonstrated the potential to be highly beneficial for nanocatalytic therapy (NCT), their unsatisfactory catalytic activity accompanied by intricate tumor microenvironment (TME) significantly hinders the therapeutic effect of NCT. Herein, for the first time, a heterojunction (HJ)‐fabricated sonoresponsive and NIR‐II‐photoresponsive nanozyme is reported by assembling carbon dots (CDs) onto TiCN nanosheets. The narrow bandgap and mixed valences of Ti 3+ and Ti 4+ endow TiCN with the capability to generate reactive oxygen species (ROS) when exposed to ultrasound (US), as well as the dual enzyme‐like activities of peroxidase and glutathione peroxidase. Moreover, the catalytic activities and sonodynamic properties of the TiCN nanosheets are boosted by the formation of HJs owing to the increased speed of carrier transfer and the enhanced electron–hole separation. More importantly, the introduction of CDs with excellent NIR‐II photothermal properties could achieve mild hyperthermia (43 °C) and thereby further improve the NCT and sonodynamic therapy (SDT) performances of CD/TiCN. The synergetic therapeutic efficacy of CD/TiCN through mild hyperthermia‐amplified NCT and SDT could realize “three‐in‐one” multimodal oncotherapy to completely eliminate tumors without recurrence. This study opens a new avenue for exploring sonoresponsive and NIR‐II‐photoresponsive nanozymes for efficient tumor therapy based on semiconductor HJs.
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