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◆ ACS Applied Materials & Interfaces2025-10-23· Antimicrobial

Acid-Responsive Bimetallic Peroxide Composite Nanoplatform for Synergistic Therapy of Drug-Resistant Bacterial Infections via Inducing Oxidative Stress and Disrupting Bacterial Energy Metabolism

Li Wang, Fan Yang, Jie Gong, Weiwei Chen, Yawen Zheng, Xi Chen, Weiqing Hu, Yi Li, Ke Yang, Zefeng Wang, Dinggeng He, Luo Hai

原始摘要(英文原文)· Original abstract
Bacterial infections, particularly those caused by multidrug-resistant (MDR) bacteria, pose a serious global health threat. The limited efficacy of traditional antibiotic drugs against MDR strains and the slow development of antibiotics necessitate the exploration of alternative therapeutic strategies. Acid-degradable metallic peroxide has emerged as a promising solution, exhibiting broad-spectrum antimicrobial activity with a reduced risk of resistance development. In this study, we have constructed an acid-responsive bimetallic peroxide nanocomposite (ZCS@M@HA) for the treatment of wound infections involving methicillin-resistant Staphylococcus aureus (MRSA). In our design, the copper-doped zinc peroxide (ZC) nanoparticles are prepared and coated with mesoporous silica to obtain core–shell structured ZC@M, which is subsequently loaded with S -nitroso- N -acetylpenicillamine (SNAP) acting as a nitric oxide (NO) donor and capped with sodium hyaluronate (HA) to prevent premature SNAP release. In the acidic microenvironment of infectious sites, ZCS@M@HA releases Zn 2+, Cu 2+, and H 2 O 2, and the former disrupts bacterial energy metabolism by impairing the electron transport chain. Meanwhile, self-supplied H 2 O 2 and Cu 2+ perform a Fenton-like reaction to generate highly toxic hydroxyl radicals (•OH) for damaging bacterial membranes. Moreover, Cu 2+ depletes intracellular glutathione (GSH) to augment the oxidative stress. Furthermore, NO released from SNAP triggered by Cu 2+ and GSH accelerates wound healing by promoting collagen deposition, tissue regeneration, and vascularization. In vivo assays demonstrate the high MRSA inhibition efficacy of ZCS@M@HA with optimal wound healing. The proposed acid-responsive ZCS@M@HA with multi-bactericidal modalities offers an effective approach to fight MDR bacteria and presents a promising strategy for treating wound infections.
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Acid-Responsive Bimetallic Peroxide Composite Nanoplatform for Synergistic Therapy of Drug-Resistant Bacterial Infections via Inducing Oxidative Stress and Disrupting Bacterial Energy Metabolism — 科研速览 Science Skim