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Updated: Sep 23, 2026

Laser-free Hydroxyl Radical Protein Footprinting to Perform Higher Order Structural Analysis of Proteins
Published on: June 4, 2021
Self-reconstruction of single copper atoms drives precise hydroxyl radicals generation for efficient water
Xu Liu1,2, Miao Cao3, Feiyue Jia3
1Shanghai Key Lab of Chemical Assessment and Sustainability, School of Chemical Science and Engineering, Tongji University, Shanghai, China.
Abstract:
Antibiotic-resistant bacteria (ARB) and their genes (ARGs) pose a significant risk to public health and the ecosystem. Conventional water disinfection efficiently eliminates pathogens, however, it requires intensive chemical consumption but inefficiently removes ARGs. Herein, we propose an on-demand electrochemical platform that simultaneously eliminate both ARB and ARGs with in-situ generated hydroxyl radicals (·OH) without additional chemical inputs. Single-atom copper catalysts with CuN4 coordination structure (SA-CuN4/NC) are precisely tuned to directly convert oxygen into controllable ·OH via three-electron oxygen reduction reaction (3e⁻ ORR). Operando X-ray adsorption near-edge spectroscopy reveals a potential-driven self-reconstruction of single-atom Cu sites to optimize ·OH concentration. Specially, the preferentially adsorbed H+ onto the adjacent N atoms promotes the breaking of Cu-N bonds to form stable Cu2-CuN2 cluster as a genuine active site. As expected, the SA-CuN4/NC with moderate ·OH (~11.5 μM) exhibits ultra-fast degradation of E. coli HT115, accomplishing an ~ 8 log removal within 1 min and a complete elimination of ARGs in 30 min. Excess ·OH (~47.9 μM) triggers bacterial aggregation which compromises bacterial inactivation. These findings demonstrate that 3e⁻ ORR is a sustainable and effective strategy to obtain fast and complete water disinfection, preventing environmental spread of ARGs.
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