Enhancing radiation-resistance and peroxidase-like activity of single-atom copper nanozyme via local coordination manipulation.

Wu, Jiabin; Zhu, Xianyu; Li, Qun; Fu, Qiang; Wang, Bingxue; Li, Beibei; Wang, Shanshan; Chang, Qingchao et al. · Nat Commun · 2024

basic_science · Level V

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Abstract

The inactivation of natural enzymes by radiation poses a great challenge to their applications for radiotherapy. Single-atom nanozymes (SAzymes) with high structural stability under such extreme conditions become a promising candidate for replacing natural enzymes to shrink tumors. Here, we report a CuN<sub>3</sub>-centered SAzyme (CuN<sub>3</sub>-SAzyme) that exhibits higher peroxidase-like catalytic activity than a CuN<sub>4</sub>-centered counterpart, by locally regulating the coordination environment of single copper sites. Density functional theory calculations reveal that the CuN<sub>3</sub> active moiety confers optimal H<sub>2</sub>O<sub>2</sub> adsorption and dissociation properties, thus contributing to high enzymatic activity of CuN<sub>3</sub>-SAzyme. The introduction of X-ray can improve the kinetics of the decomposition of H<sub>2</sub>O<sub>2</sub> by CuN<sub>3</sub>-SAzyme. Moreover, CuN<sub>3</sub>-SAzyme is very stable after a total radiation dose of 500 Gy, without significant changes in its geometrical structure or coordination environment, and simultaneously still retains comparable peroxidase-like activity relative to natural enzymes. Finally, this developed CuN<sub>3</sub>-SAzyme with remarkable radioresistance can be used as an external field-improved therapeutics for enhancing radio-enzymatic therapy in vitro and in vivo. Overall, this study provides a paradigm for developing SAzymes with improved enzymatic activity through local coordination manipulation and high radioresistance over natural enzymes, for example, as sensitizers for cancer therapy.

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