Engineering Antimicrobial Metal–Phenolic Network Nanoparticles with High Biocompatibility for Wound Healing

Author:

Yu Rongxin1,Chen Hongping1,He Jian2,Zhang Zhichao3,Zhou Jiajing4ORCID,Zheng Qinqin1,Fu Zhouping1,Lu Chengyin1,Lin Zhixing5ORCID,Caruso Frank5ORCID,Zhang Xiangchun1ORCID

Affiliation:

1. Tea Research Institute Chinese Academy of Agricultural Sciences Hangzhou 310008 China

2. College of Basic Medical and Forensic Medicine Henan University of Science and Technology Luoyang 471000 China

3. Department of Orthopedics Shanghai General Hospital Shanghai Jiao Tong University Shanghai 200000 China

4. College of Biomass Science and Engineering Sichuan University Chengdu 610065 China

5. Department of Chemical Engineering The University of Melbourne Parkville Victoria 3010 Australia

Abstract

AbstractAntibiotic‐resistant bacteria pose a global health threat by causing persistent and recurrent microbial infections. To address this issue, antimicrobial nanoparticles (NPs) with low drug resistance but potent bactericidal effects have been developed. However, many of the developed NPs display poor biosafety and their synthesis often involves complex procedures and the antimicrobial modes of action are unclear. Herein, a simple strategy is reported for designing antimicrobial metal‒phenolic network (am‐MPN) NPs through the one‐step assembly of a seeding agent (diethyldithiocarbamate), natural polyphenols, and metal ions (e.g., Cu2+) in aqueous solution. The Cu2+‐based am‐MPN NPs display lower Cu2+ antimicrobial concentrations (by 10–1000 times) lower than most reported nanomaterials and negligible toxicity across various models, including, cells, blood, zebrafish, and mice. Multiple antimicrobial modes of the NPs have been identified, including bacterial wall disruption, reactive oxygen species production, and quinoprotein formation, with the latter being a distinct pathway identified for the antimicrobial activity of the polyphenol‐based am‐MPN NPs. The NPs exhibit excellent performance against multidrug‐resistant bacteria (e.g., methicillin‐resistant Staphylococcus aureus (MRSA)), efficiently inhibit and destroy bacterial biofilms, and promote the healing of MRSA‐infected skin wounds. This study provides insights on the antimicrobial properties of metal‒phenolic materials and the rational design of antimicrobial metal‒organic materials.

Funder

National Natural Science Foundation of China

Chinese Academy of Agricultural Sciences

Australian Research Council

National Health and Medical Research Council

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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