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Updated: May 5, 2026

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Published on: August 13, 2013
Iron/Cobalt Dual-Atom Catalyst Orchestrate Photothermal-Chemodynamic Immunotherapy Against MRSA: Multi-Omics
Shihao Xu1, Binge Huang2, Hao Lin3
1Department of Ultrasound Medicine, National Key Clinical Specialty (Wound Healing), Wenzhou Key Laboratory of Interventional Ultrasound for Intelligent Healthcare and Clinical Translation, the First Affiliated Hospital of Wenzhou Medical University, Wenzhou, China.
None:
Translating pathogen-specific molecular insights into effective treatments remains a significant challenge, particularly for drug-resistant wound infections. In this study, we develop a nitrogen-doped iron/cobalt dual-atom catalyst (FeCo-N-DAC) with high metal loading (Fe > 5.4%, Co > 4.8%) as a multifunctional platform that integrates nanozyme-mimicking catalytic activity and photothermal therapy. FeCo-N-DAC mimics multiple natural enzymes to generate reactive oxygen species, disrupt bacterial biofilms, and eradicate methicillin-resistant Staphylococcus aureus (MRSA) in both murine and porcine models of subcutaneous abscesses and infectious wounds, respectively. Upon near-infrared (NIR-II) irradiation, the material exhibits deep-seated tissue penetration and synergistic catalytic-photothermal effects, enabling complete biofilm clearance in otherwise recalcitrant infections. Multi-omics analyses, including transcriptomics and proteomics, reveal that FeCo-N-DAC modulates immune responses and promotes tissue regeneration by reprogramming inflammation- and fibrosis-related pathways. This study highlights the therapeutic potential of dual-atom nanozymes for precision anti-infective therapy and underscores their translational relevance in treating complex, biofilm-associated infections.
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