化学
激进的
催化作用
体内
体外
细胞凋亡
生物物理学
氧化磷酸化
异质结
细胞外
电子转移
材料科学
生物化学
光化学
生物
光电子学
生物技术
作者
Huilin Zhang,Yang Chen,Wei Hua,Wen‐Jun Gu,Hongjun Zhuang,Huiyan Li,Xingwu Jiang,Wei Ma,Yanyan Liu,Dayong Jin,Wenbo Bu
标识
DOI:10.1002/anie.202300356
摘要
Abstract Sustained signal activation by hydroxyl radicals (⋅OH) has great significance, especially for tumor treatment, but remains challenging. Here, a built‐in electric field (BIEF)‐driven strategy was proposed for sustainable generation of ⋅OH, thereby achieving long‐lasting chemodynamic therapy (LCDT). As a proof of concept, a novel Janus‐like Fe@Fe 3 O 4 −Cu 2 O heterogeneous catalyst was designed and synthesized, in which the BIEF induced the transfer of electrons in the Fe core to the surface, reducing ≡Cu 2+ to ≡Cu + , thus achieving continuous Fenton‐like reactions and ⋅OH release for over 18 h, which is approximately 12 times longer than that of Fe 3 O 4 −Cu 2 O and 72 times longer than that of Cu 2 O nanoparticles. In vitro and in vivo antitumor results indicated that sustained ⋅OH levels led to persistent extracellular regulated protein kinases (ERK) signal activation and irreparable oxidative damage to tumor cells, which promoted irreversible tumor apoptosis. Importantly, this strategy provides ideas for developing long‐acting nanoplatforms for various applications.
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