Single-atom nanozymes catalytically surpassing naturally occurring enzymes as sustained stitching for brain trauma.

Zhang, Shaofang; Li, Yonghui; Sun, Si; Liu, Ling; Mu, Xiaoyu; Liu, Shuhu; Jiao, Menglu; Chen, Xinzhu et al. · Nat Commun · 2022

basic_science · Level V

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Abstract

Regenerable nanozymes with high catalytic stability and sustainability are promising substitutes for naturally-occurring enzymes but are limited by insufficient and non-selective catalytic activities. Herein, we developed single-atom nanozymes of RhN<sub>4</sub>, VN<sub>4</sub>, and Fe-Cu-N<sub>6</sub> with catalytic activities surpassing natural enzymes. Notably, Rh/VN<sub>4</sub> preferably forms an Rh/V-O-N<sub>4</sub> active center to decrease reaction energy barriers and mediates a "two-sided oxygen-linked" reaction path, showing 4 and 5-fold higher affinities in peroxidase-like activity than the FeN<sub>4</sub> and natural horseradish peroxidase. Furthermore, RhN<sub>4</sub> presents a 20-fold improved affinity in the catalase-like activity compared to the natural catalase; Fe-Cu-N<sub>6</sub> displays selectivity towards the superoxide dismutase-like activity; VN<sub>4</sub> favors a 7-fold higher glutathione peroxidase-like activity than the natural glutathione peroxidase. Bioactive sutures with Rh/VN<sub>4</sub> show recyclable catalytic features without apparent decay in 1 month and accelerate the scalp healing from brain trauma by promoting the vascular endothelial growth factor, regulating the immune cells like macrophages, and diminishing inflammation.

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