Tribovoltaic Effect Strengthened Microwave Catalytic Antibacterial Composite Hydrogel

Author:

Zheng Qiyao1,Liu Xiangmei23ORCID,Mao Congyang2,Liu Hanpeng4,Jin Liguo4,Wang Chaofeng3,Zhu Shengli4,Zheng Yufeng1,Li Zhaoyang4,Jiang Hui4,Cui Zhenduo4,Zhang Yu5,Chu Paul K6,Wu Shuilin1ORCID

Affiliation:

1. School of Materials Science & Engineering Peking University Yiheyuan Road 5# Beijing 100871 China

2. Biomedical Materials Engineering Research Center Hubei Key Laboratory of Polymer Materials Ministry‐of‐Education Key Laboratory for the Green Preparation and Application of Functional Materials School of Materials Science & Engineering State Key Laboratory of Biocatalysis and Enzyme Engineering Hubei University Wuhan 430062 China

3. School of Health Science & Biomedical Engineering Hebei University of Technology Xiping Avenue 5340# Tianjin 300401 China

4. School of Materials Science & Engineering the Key Laboratory of Advanced Ceramics and Machining Technology by the Ministry of Education of China Tianjin University Yaguan Road 135# Tianjin 300072 China

5. Department of Orthopedics Guangdong Provincial People's Hospital Guangdong Academy of Medical Sciences Guangzhou 510080 China

6. Department of Physics Department of Materials Science and Engineering and Department of Biomedical Engineering City University of Hong Kong Tat Chee Avenue Hong Kong 999077 China

Abstract

AbstractMicrowave (MW) therapy is an emerging therapy with high efficiency and deep penetration to combat the crisis of bacterial resistance. However, as the energy of MW is too low to induce electron transition, the mechanism of MW catalytic effect remains ambiguous. Herein, a cerium‐based metal–organic framework (MOF) is fabricated and used in MW therapy. The MW‐catalytic performance of CeTCPP is largely dependent on the ions in the liquid environment, and the electron transition is achieved through a “tribovoltaic effect” between water molecules and CeTCPP. By this way, CeTCPP can generate reactive oxygen species (ROS) in saline under pulsed MW irradiation, showing 99.9995 ± 0.0002% antibacterial ratio against Staphylococcus aureus (S. aureus) upon two cycles of MW irradiation. Bacterial metabolomics further demonstrates that the diffusion of ROS into bacteria led to the bacterial metabolic disorders. The bacteria are finally killed due to “amino acid starvation”. In order to improve the applicability of CeTCPP, It is incorporated into alginate‐based hydrogel, which maintains good MW catalytic antibacterial efficiency and also good biocompatibility. Therefore, this work provides a comprehensive instruction of using CeTCPP in MW therapy, from mechanism to application. This work also provides new perspectives for the design of antibacterial composite hydrogel.

Funder

China National Funds for Distinguished Young Scientists

National Natural Science Foundation of China

Natural Science Foundation of Beijing Municipality

Publisher

Wiley

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