生物膜
活性氧
氧化还原
免疫系统
细胞生物学
平衡
微生物学
生物
化学
细菌
免疫学
遗传学
有机化学
作者
Min Ge,Wanbo Zhu,Jiawei Mei,Tingting Hu,Chuang Yang,Han Lin,Jianlin Shi
标识
DOI:10.1002/adma.202409633
摘要
Abstract Strategies of manipulating redox signaling molecules to inhibit or activate immune signals have revolutionized therapeutics involving reactive oxygen species (ROS). However, certain diseases with dual resistance barriers to the attacks by both ROS and immune cells, such as bacterial biofilm infections of medical implants, are difficult to eradicate by a single exogenous oxidative stimulus due to the diversity and complexity of the redox species involved. Here, this work demonstrates that metal‐organic framework (MOF) nanoparticles capable of disrupting the bacterial ROS‐defense system can dismantle bacterial redox resistance and induce potent antimicrobial immune responses in a mouse model of surgical implant infection by simultaneously modulating redox homeostasis and initiating neutrophil N1 polarization in the infection microenvironment. Mechanistically, the piezoelectrically enhanced MOF triggers ROS production by tilting the band structure and acts synergistically with the aurintricarboxylic acid loaded within the MOF, which inhibits the activity of the cystathionine γ‐cleaving enzyme. This leads to biofilm structure disruption and antigen exposure through homeostatic imbalance and synergistic activation of neutrophil N1 polarization signals. Thus, this study provides an alternative but promising strategy for the treatment of antibiotic‐resistant biofilm infections.
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