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Published on: April 7, 2023
A cascade nanozyme with antimicrobial effects against nontypeable Haemophilus influenzae
Xiaojing Ma1, Jiayan Lang1, Pengyu Chen1
1Robert F. Smith School of Chemical & Biomolecular Engineering, Cornell University, Ithaca, NY 14853, USA. ryang@cornell.edu.
Abstract:
Otitis media (OM) is the main cause of pediatric antibiotic prescriptions. Nontypeable Haemophilus influenzae (NTHi) is a major OM pathogen, which forms a biofilm that resists conventional antimicrobials and immune clearance. Thus, novel treatments that are effective against NTHi and its biofilm are urgently required. Nanozymes (often inorganic nanoparticles) mimic natural enzymes' catalytic activities to generate strong antimicrobials at the site of infection, and thus represent one of the emerging solutions to the crisis of antimicrobial resistance. They mimic natural enzymes' activities, such as generating strong antimicrobials catalytically at the site of infection, to minimize overexposure. However, that in situ generation often relies on Reactive Oxygen Species (ROS) as precursors, a prerequisite that limits the broad deployment of nanozymes. To address this challenge, we designed a cascade nanozyme that generates an antiseptic, HOBr, from a ubiquitous non-ROS, i.e., O2, which successfully eradicates NTHi. The cascade nanozyme simultaneously exhibits glucose oxidase (GOx)-like activity from gold nanoparticles (AuNPs) and haloperoxidase (HPO)-mimicking activity from vanadium pentoxide nanowires (V2O5 NWs) connected using dopamine (DPA). The cascade nanozyme demonstrated strong antimicrobial efficacy against NTHi and its biofilm, while showing improved biocompatibility compared to the nanozyme of V2O5 NWs alone. The cascade nanozyme thus points to a material-oriented infectious disease treatment strategy, where small-molecule antimicrobials are generated in real time at the site of infection for the benefit of autonomous dosing. This strategy potentially mitigates the development of antimicrobial resistance and reduces side effects.
Insights
A novel cascade nanozyme effectively eradicates Nontypeable Haemophilus influenzae (NTHi) and its biofilm by generating antiseptic HOBr from oxygen. This approach offers a promising strategy against antimicrobial resistance in otitis media treatment.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Infectious Diseases
Background:
- Otitis media (OM) is a primary driver of pediatric antibiotic prescriptions.
- Nontypeable Haemophilus influenzae (NTHi) forms biofilms, conferring resistance to conventional treatments and immune clearance.
- Novel antimicrobial strategies are crucial to combat NTHi-related infections and antimicrobial resistance.
Purpose of the Study:
- To design and evaluate a novel cascade nanozyme for effective NTHi eradication.
- To address limitations of existing nanozymes reliant on reactive oxygen species (ROS).
- To develop an in situ antimicrobial generation system for otitis media treatment.
Main Methods:
- A cascade nanozyme was engineered using gold nanoparticles (AuNPs) and vanadium pentoxide nanowires (V2O5 NWs) linked by dopamine (DPA).
- The nanozyme mimicked glucose oxidase (GOx) and haloperoxidase (HPO) activities to generate hypobromous acid (HOBr) from oxygen (O2).
- Antimicrobial efficacy against NTHi and its biofilm, along with biocompatibility, was assessed.
Main Results:
- The cascade nanozyme successfully generated HOBr from O2, eradicating NTHi.
- Significant antimicrobial activity against NTHi and its biofilm was observed.
- The cascade nanozyme exhibited improved biocompatibility compared to V2O5 NWs alone.
Conclusions:
- The developed cascade nanozyme offers a potent strategy for NTHi and biofilm eradication.
- This material-oriented approach enables real-time generation of antiseptics, facilitating autonomous dosing.
- The strategy holds potential for mitigating antimicrobial resistance and reducing treatment side effects in otitis media.
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