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Updated: Jan 19, 2026

Simultaneous Measurement of Superoxide/Hydrogen Peroxide and NADH Production by Flavin-containing Mitochondrial Dehydrogenases
Published on: February 24, 2018
A dual-component carrier with both non-enzymatic and enzymatic antioxidant activity towards ROS depletion
Maria Jose York-Duran1, Maria Godoy-Gallardo1, Michelle Maria Theresia Jansman1
1Department of Health Technology, Centre for Nanomedicine and Theranostics, DTU Health Tech, Technical University of Denmark, Building 423, 2800, Lyngby, Denmark. leri@dtu.dk.
Abstract:
While ROS display crucial functions in many physiological processes, elevated ROS levels are also related to the initiation and progression of many severe diseases such as cancer, cardiovascular conditions or neurologic disorders. Research approaches to diminish ROS levels during disease progression are currently being focused on the therapeutic administration of antioxidant enzymes. However, enzyme administration suffers from several limitations including their fast elimination from blood upon administration, thus making crucial the development of enzyme encapsulating platforms. We have recently reported a multicompartment architecture constituted by two inherently different types of materials, i.e., polymeric microgels and liposomes. Poly(N-isopropylacrylamide-co-acrylic acid) microgels decorated with liposomes and subsequently coated by a protective poly(dopamine) shell (PDA) combine the benefits of both systems while minimizing some of their drawbacks. Herein, we exploit this dual-component platform as a microreactor for ROS depletion. We combine the intrinsic PDA's antioxidant properties with the encapsulation of the catalase enzyme within the liposomal compartments. The surface of the carrier is further functionalised with a poly(ethylene glycol) layer and the low fouling properties are demonstrated in terms of reduction of protein adsorption and cellular uptake. The potential of the carrier as an antioxidant microreactor is shown by its ability to deplete superoxide radicals and hydrogen peroxide, which can also take place in the presence of the two relevant cell lines.
Insights
This study presents a novel antioxidant microreactor platform combining microgels and liposomes for enhanced reactive oxygen species (ROS) depletion. The developed system effectively reduces harmful ROS, offering a promising therapeutic strategy for ROS-related diseases.
Area of Science:
- Biomaterials Science
- Nanotechnology
- Biochemistry
Background:
- Elevated reactive oxygen species (ROS) are implicated in severe diseases like cancer and cardiovascular conditions.
- Current antioxidant enzyme therapies face limitations due to rapid blood elimination.
- Enzyme encapsulating platforms are crucial for effective ROS management.
Purpose of the Study:
- To develop and evaluate a novel dual-component microreactor for efficient ROS depletion.
- To combine the antioxidant properties of poly(dopamine) with encapsulated catalase enzyme.
- To assess the biocompatibility and antioxidant capacity of the platform.
Main Methods:
- Fabrication of a multicompartment architecture using polymeric microgels and liposomes.
- Coating the microgel-liposome structure with a poly(dopamine) shell.
- Functionalization with a poly(ethylene glycol) layer to reduce fouling.
- Evaluation of ROS scavenging ability against superoxide radicals and hydrogen peroxide.
Main Results:
- The poly(dopamine)-coated microgel-liposome platform demonstrated effective ROS depletion.
- The poly(ethylene glycol) functionalization significantly reduced protein adsorption and cellular uptake.
- The microreactor successfully scavenged superoxide radicals and hydrogen peroxide in vitro.
- Antioxidant activity was confirmed in the presence of relevant cell lines.
Conclusions:
- The developed microreactor platform offers a promising strategy for ROS management in disease.
- The dual-component system overcomes limitations of free enzyme administration.
- This platform holds potential for therapeutic applications targeting ROS-mediated pathologies.
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