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◆ ACS Applied Materials & Interfaces2025-11-11· Wound healing

A Self-Oxygenating Nanozyme Cascade System for Drug-Resistant Bacterial Infected Diabetic Wound Healing

Ningning Wang, Wenying Mu, Ирина А. Колесник, В. И. Поткин, Lei‐Jiao Li, Xiangru Feng, Xincui Shi, Li Deng, Ying Li, Wenliang Li

原始摘要(英文原文)· Original abstract
Chronic diabetic wounds remain challenging due to biofilm-associated antibiotic resistance, persistent hypoxia, and dysregulated inflammation. Here, we develop a copper-doped iron oxide nanozyme (CFO@PEG NPs) that synergizes with H 2 O 2 to establish a trienzyme catalytic cascade for diabetic wound regeneration. The material exhibits peroxidase-, glutathione peroxidase-, and catalase-like activities, enabling continuous ROS generation, antioxidant depletion, and hypoxia alleviation. Physicochemical characterization confirms cubic CuFe 2 O 4 nanostructures (200 nm) with coexisting Cu 2+ /Cu + and Fe 3+ /Fe 2+ redox pairs, which enhance charge transfer kinetics and multienzyme synergism. In vitro, CFO@PEG NPs (75 μg/mL) eradicate 99.9% of methicillin-resistant Staphylococcus aureus (MRSA) and multidrug-resistant Escherichia coli (MREA) while clearing 90% of biofilms. In vivo, the system accelerates healing of MRSA-infected diabetic wounds through three interconnected mechanisms: (1) ROS-mediated bacterial membrane disruption, (2) catalase-driven O 2 generation that reduces HIF-1α expression and increases CD31 neovessels, and (3) immunomodulation shifting macrophages from pro-inflammatory M1 (TNF-α: 8.5 vs 90.1 pg/mL) to reparative M2 phenotypes (IL-10:103.7 vs 21.8 pg/mL). Full wound closure is achieved within 8 days without systemic toxicity. This work provides a paradigm for engineering nanozyme cascades to address the multidimensional challenges in chronic infected wound therapy.
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A Self-Oxygenating Nanozyme Cascade System for Drug-Resistant Bacterial Infected Diabetic Wound Healing — 科研速览 Science Skim