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Updated: Jul 14, 2026

Antimicrobial Characterization of Advanced Materials for Bioengineering Applications
Published on: August 4, 2018
Surface-engineered MnO₂@Au@ZIF-67 hierarchical catalysts for acid-triggered antibacterial therapy and infected wound
Mengmeng Xu1, Yuan Liu2, Zhe Tang3
1SouthChina Advanced Institute for Soft Matter Science and Technology, School of Emergent Soft Matter, Guangdong Provincial Key Laboratory of Functional and Intelligent Hybrid Materials and Devices, Guangdong Basic Research Center of Excellence for Energy and Information Polymer Materials, South China University of Technology, Guangzhou, PR China; Luminescent Reagent Development Department, Guangzhou Wondfo Biotech Co. Ltd., Guangzhou, PR China.
Abstract:
Rational surface engineering of nanocatalysts offers new solutions against antibiotic-resistant infections. We designed and fabricated hierarchical MnO₂@Au@ZIF-67 nanoparticles (NPs) with triple interfacial functionalities for synergistic antibacterial therapy. The acid-responsive ZIF-67 surface degrades in infected wounds, releasing Co²⁺ to catalyze •OH generation via Fenton-like reactions at the material-bacteria interface. Simultaneously, ultrasmall Au surfaces deplete glucose through oxidase-mimetic catalysis, producing gluconic acid that accelerates ZIF-67 dissolution. The MnO₂ core surface decomposes H₂O₂ to supply O₂, enhancing Au catalysis and alleviating hypoxia. Comprehensive surface characterization (TEM, SEM, XPS, XRD) confirmed structural integrity and reactive sites. In vitro, the NPs achieved > 99 % bacterial killing (S. aureus/E. coli) through ROS-mediated membrane disruption (validated by SEM/CLSM). In vivo, they enabled 98.45 % bacterial clearance and accelerated wound healing via collagen reorganization (H&E/Masson staining). This surface-engineered platform demonstrates how interfacial catalytic cascades can be harnessed for effective non-antibiotic antimicrobial applications.
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