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Published on: June 23, 2022
Nanozyme-Based Robotics Approach for Targeting Fungal Infection
Min Jun Oh1,2, Seokyoung Yoon3, Alaa Babeer4,5,6
1Department of Orthodontics, School of Dental Medicine, University of Pennsylvania, Philadelphia, PA, 19104, USA.
Abstract:
Fungal pathogens have been designated by the World Health Organization as microbial threats of the highest priority for global health. It remains a major challenge to improve antifungal efficacy at the site of infection while avoiding off-target effects, fungal spreading, and drug tolerance. Here, a nanozyme-based microrobotic platform is developed that directs localized catalysis to the infection site with microscale precision to achieve targeted and rapid fungal killing. Using electromagnetic field frequency modulation and fine-scale spatiotemporal control, structured iron oxide nanozyme assemblies are formed that display tunable dynamic shape transformation and catalysis activation. The catalytic activity varies depending on the motion, velocity, and shape providing controllable reactive oxygen species (ROS) generation. Unexpectedly, nanozyme assemblies bind avidly to fungal (Candida albicans) surfaces to enable concentrated accumulation and targeted ROS-mediated killing in situ. By exploiting these tunable properties and selective binding to fungi, localized antifungal activity is achieved using in vivo-like cell spheroid and animal tissue infection models. Structured nanozyme assemblies are directed to Candida-infected sites using programmable algorithms to perform precisely guided spatial targeting and on-site catalysis resulting in fungal eradication within 10 min. This nanozyme-based microrobotics approach provides a uniquely effective and targeted therapeutic modality for pathogen elimination at the infection site.
Insights
A novel nanozyme microrobotic platform precisely targets fungal infections, rapidly killing pathogens like Candida albicans using localized reactive oxygen species (ROS) generation. This breakthrough offers targeted antifungal therapy with minimal side effects.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Mycology
Background:
- Fungal pathogens are a high-priority global health threat.
- Current antifungal strategies face challenges with efficacy, drug tolerance, and off-target effects.
- Targeted delivery of antifungal agents to infection sites is crucial.
Purpose of the Study:
- To develop a nanozyme-based microrobotic platform for precise, localized antifungal treatment.
- To investigate the controllable catalytic activity and ROS generation of nanozyme assemblies.
- To demonstrate targeted fungal killing in vitro and in vivo models.
Main Methods:
- Fabrication of structured iron oxide nanozyme assemblies with tunable shape and catalysis.
- Utilizing electromagnetic field modulation for spatiotemporal control of nanozymes.
- Assessing nanozyme binding to Candida albicans and ROS-mediated killing.
- Testing efficacy in cell spheroid and animal tissue infection models.
Main Results:
- Nanozyme assemblies exhibited tunable shape transformation and controllable ROS generation.
- Assemblies showed avid binding to fungal surfaces, enabling localized accumulation.
- Targeted delivery and on-site catalysis led to rapid fungal eradication within 10 minutes.
- Effective antifungal activity was demonstrated in complex infection models.
Conclusions:
- The nanozyme-based microrobotic platform offers a highly effective and targeted therapeutic approach.
- Precise spatial targeting and localized catalysis overcome challenges in antifungal treatment.
- This technology presents a promising modality for pathogen elimination at infection sites.
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