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Updated: Jul 8, 2025

Author Spotlight: Exploring the Antibacterial Effects of Zinc Oxide Nanoparticles in Overcoming Antibiotic Resistance
Published on: September 27, 2024
Redox Active Zn@MOFs as Spontaneous Reactive Oxygen Species Releasing Antimicrobials
Jinquan Wang1,2, Siew Ping Teong1,2, Siti Nurhanna Riduan2
1Institute of Sustainability for Chemicals Energy and Environment (ISCE2), Agency for Science, Technology and Research (A*STAR), 1 Pesek Road, Jurong Island, Singapore 627833, Republic of Singapore.
Abstract:
The rapid development of antimicrobial resistance (AMR) among infectious pathogens has become a major threat and challenge in healthcare systems globally. A strategy distinct from minimizing the overuse of antimicrobials involves the development of novel antimicrobials with a mode of action that prevents the development of AMR microbial strains. Reactive oxygen species (ROS) are formed as a natural byproduct of the cellular aerobic metabolism. However, it becomes pathological when ROS is produced at excessive levels. Exploiting this phenomenon, research on redox-active bactericides has been demonstrated to be beneficial. Materials that release ROS via photodynamic, thermodynamic, and photocatalytic interventions have been developed as nanomedicines and are used in various applications. However, these materials require external stimuli for ROS release to be effective as biocides. In this paper, we report novel zinc-based metal organic framework (Zn@MOF) particles that promote the spontaneous release of active ROS species. The synthesized Zn@MOF spontaneously releases superoxide anions and hydrogen peroxide, exhibiting a potent antimicrobial efficacy against various microbes. Zn@MOF-incorporated plastic films and coatings show excellent, long-lasting antimicrobial potency even under continuous microbial challenge and an aging process. These disinfecting surfaces maintain their antimicrobial properties even after 500× surface wipes. Zn@MOF is also biocompatible and safe on the skin, illustrating its broad potential applications in medical technology and consumer care applications.
Insights
Novel zinc-based metal-organic framework (Zn@MOF) particles spontaneously release reactive oxygen species (ROS), offering a potent antimicrobial solution. These materials provide long-lasting disinfection for surfaces, addressing the challenge of antimicrobial resistance.
Area of Science:
- Materials Science
- Nanotechnology
- Biochemistry
Background:
- Antimicrobial resistance (AMR) is a significant global health threat.
- Novel antimicrobial strategies are needed to combat resistant pathogens.
- Reactive oxygen species (ROS) can be harnessed for antimicrobial effects.
Purpose of the Study:
- To develop novel antimicrobial materials that do not rely on external stimuli for ROS release.
- To investigate the antimicrobial efficacy and properties of zinc-based metal-organic framework (Zn@MOF) particles.
Main Methods:
- Synthesis of zinc-based metal-organic framework (Zn@MOF) particles.
- Assessment of spontaneous ROS release (superoxide anions and hydrogen peroxide).
- Evaluation of antimicrobial efficacy on various microbes and incorporated into plastic films/coatings.
Main Results:
- Zn@MOF particles spontaneously release ROS.
- Demonstrated potent antimicrobial efficacy against diverse microbes.
- Zn@MOF incorporated into surfaces provided durable antimicrobial properties, resisting continuous challenge and aging.
- Surfaces retained efficacy after 500 wipes and showed biocompatibility.
Conclusions:
- Zn@MOF particles offer a promising approach to combatting AMR through spontaneous ROS generation.
- These materials present a durable, biocompatible solution for disinfecting surfaces in medical and consumer applications.
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