杂原子
催化作用
生物催化
咪唑酯
沸石咪唑盐骨架
化学
基质(水族馆)
兴奋剂
材料科学
纳米技术
硫黄
电催化剂
组合化学
活动站点
加氢脱硫
化学工程
电子结构
无机化学
共价键
作者
Kaijuan Chen,Qianfan Chen,Bernt Johannessen,Chun‐Ho Lin,Long Hu,Kang Liang,Jieying Liang
标识
DOI:10.1002/advs.202517502
摘要
Abstract Single‐atom catalysts (SACs) exhibit enzyme‐mimicking activity but are often limited by single‐enzyme–like functions and modest catalytic efficiency. Here, a metallothionein‐inspired heteroatom doping strategy is reported to construct asymmetric Fe single‐atom catalysts (FeN 3 S). Fe 3 ⁺ is coordinated with cysteine via strong mercaptide bond formation, followed by zeolitic imidazolate framework‐8 (ZIF‐8) biomineralization and pyrolysis. The FeN 3 S catalyst displays markedly enhanced multi‐enzyme activities—including NADH oxidase‐, oxidase‐, peroxidase‐, and catalase‐like activities—with 1.35–4.60‐fold improvements compared to sulfur (S)‐free analogues. This high multi‐enzyme efficiency arises from i) atomically dispersed Fe from biomineralization; ii) the large surface area and pore volume retained from the original metal–organic framework, and iii) the S‐doping achieved through the strong mercaptide coordination between Fe and S. The S doping not only tunes electronic structure of Fe single atom to reduce activation barriers and enhances substrate interaction, but also facilitates charge transfer. As a result, FeN 3 S induces ≈90% tumor cell suppression within one day through reactive oxygen species generation and disruption of the NADH/NAD⁺ balance, highlighting its strong potential for cancer therapy. This work provides a bioinspired strategy for advancing SACs toward multifunctional biocatalysis and biomedical applications.
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