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A universal oxygen scavenger for oxidase-based biosensors
Huijie Zhang1, Mohamed G Saadeldin2, Darren Buesen2
1School of New Energy, Nanjing University of Science and Technology, Jiangyin, Jiangsu 214443, China.
Science Advances
|September 12, 2025
Summary
A novel enzymatic oxygen scavenger eliminates interference in oxidase biosensors, improving accuracy from 50% to 99% for crucial health markers like glucose and lactate.
Area of Science:
- Electrochemistry
- Biosensor Technology
- Biochemistry
Background:
- Oxidase-based electrochemical biosensors are vital for point-of-use diagnostics.
- Oxygen interference significantly compromises the accuracy of these biosensors.
- Existing methods struggle to mitigate oxygen's detrimental effects.
Purpose of the Study:
- To develop a universal enzymatic oxygen scavenger for oxidase biosensors.
- To eliminate oxygen interference and enhance sensing accuracy.
- To demonstrate broad applicability across various analytes.
Main Methods:
- Engineered an enzymatic oxygen scavenger using alcohol oxidase, catalase, and paraformaldehyde.
- Alcohol oxidase was chosen for its exclusive use of oxygen as an electron acceptor.
- Tested the scavenger's compatibility with glucose, lactate, and creatinine biosensors.
Main Results:
- The oxygen scavenger effectively converted oxygen to water, removing it from the sensor environment.
- Without the scavenger, sensor readings were below 50% accuracy compared to inert conditions.
- With the scavenger, accuracy improved to 99%, even at low analyte concentrations.
Conclusions:
- The developed alcohol oxidase-based oxygen scavenger is compatible with multiple oxidase biosensors.
- This technology significantly enhances biosensor accuracy by eliminating oxygen interference.
- The scavenger enables reliable, calibration-free point-of-use sensing for health monitoring.
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