Metallothionein‐inspired asymmetric heteroatom doping of single‐atom nanozymes for multi‐enzyme biocatalysis
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Wiley
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 (FeN3S). Fe3⁺ is coordinated with cysteine via strong mercaptide bond formation, followed by zeolitic imidazolate framework-8 (ZIF-8) biomineralization and pyrolysis. The FeN3S 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, FeN3S 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. © 2025 The Author(s). Advanced Science published by Wiley-VCH GmbH. Open Access CC BY 4.0.
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Chen, K., Chen, Q., Johannessen, B., Lin, C.-H., Hu, L., Liang, K., & Liang, J. (2026). Metallothionein‐inspired asymmetric heteroatom doping of single‐atom nanozymes for multi‐enzyme biocatalysis. Advanced Science, 13(5), e17502. doi:10.1002/advs.202517502