Electron Aggregation and Oxygen Fixation Reinforced Microwave Dynamic and Thermal Therapy for Effective Treatment of MRSA‐Induced Osteomyelitis

Author:

Liao Shasha123,Wu Shuilin134ORCID,Mao Congyang1,Wang Chaofeng2,Cui Zhenduo4,Zheng Yufeng3,Li Zhaoyang4,Jiang Hui4,Zhu Shengli4,Liu Xiangmei12

Affiliation:

1. 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

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

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

Abstract

AbstractAntibiotics are frequently used to clinically treat osteomyelitis caused by bacterial infections. However, extended antibiotic use may result in drug resistance, which can be life threatening. Here, a heterojunction comprising Fe2O3/Fe3S4 magnetic composite is constructed to achieve short‐term and efficient treat osteomyelitis caused by methicillin‐resistant Staphylococcus aureus (MRSA). The Fe2O3/Fe3S4 composite exhibits powerful microwave (MW) absorption properties, thereby effectively converting incident electromagnetic energy into thermal energy. Density functional theory calculations demonstrate that Fe2O3/Fe3S4 possesses significant charge accumulation and oxygen‐fixing capacity at the heterogeneous interface, which provides more active sites and oxygen sources for trapping electromagnetic hotspots. The finite element analysis indicates that Fe2O3/Fe3S4 displays a larger electromagnetism field enhancement parameter than Fe2O3 owing to a significant increase in electromagnetic hotspots. These hotspots contribute to charge differential accumulation and depletion motions at the interface, thereby augmenting the release of free electrons that subsequently combine with the oxygen adsorbed by Fe2O3/Fe3S4 to generate reactive oxygen species (ROS) and heat. This research, which achieves extraordinary bacterial eradication through the synergistic effect of microwave thermal therapy (MWTT) and microwave dynamic therapy (MDT), presents a novel strategy for treating deep‐tissue bacterial infections.

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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