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Updated: Sep 8, 2026

Hollow Microneedle-based Sensor for Multiplexed Transdermal Electrochemical Sensing
Published on: June 1, 2012
Oxygen-adaptive continuous lactate monitoring via dual-regime electrochemical sensing and dynamic calibration
Xinyi Wang1, Yuying Lin1, Rubing Xiong1
1Department of Clinical Laboratory, Guangdong Provincial Key Laboratory of Major Obstetric Diseases, Guangdong Provincial Clinical Research Center for Obstetrics and Gynecology, The Third Affiliated Hospital, Guangzhou Medical University, No. 63 Duobao Road, Liwan District, Guangzhou, Guangdong, 510150, PR China.
Background:
Continuous lactate monitoring provides valuable information on metabolic dynamics during exercise and recovery. Enzymatic lactate sensors commonly use lactate oxidase, whose catalytic response depends on local oxygen availability. As physiological oxygen levels fluctuate, a calibration model established under one oxygen condition may generate substantial measurement bias under another condition. Existing wearable lactate sensors generally use a single calibration model and therefore cannot compensate for oxygen-dependent changes in sensor response. The key problem addressed in this study is the lack of an oxygen-adaptive calibration strategy for accurate continuous lactate monitoring in complex physiological microenvironments.
Results:
We developed a wearable electrochemical platform based on a carbon nanotube/Prussian blue/lactate oxidase interface and integrated it with a custom portable microcircuit. The system classified currents less negative than -0.8 μA as hypoxic and those more negative than -0.8 μA as aerobic, and applied the corresponding calibration model in real time. The sensor showed linear responses from 2 to 12 mM lactate, with sensitivities of 0.2247 μA/mM under aerobic conditions and 0.01256 μA/mM under hypoxic conditions. Plasma measurements agreed closely with a commercial biochemical analyzer (r = 0.9860). In rats, sensor readings correlated strongly with blood lactate assay results during both aerobic (r = 0.9766) and hypoxic (r = 0.9316) phases. The oxygen-adaptive strategy achieved a mean absolute relative difference of 4.86%, compared with 59.72% and 1028% for the single aerobic and hypoxic calibration models, respectively.
Significance And Novelty:
This study introduces an oxygen-adaptive calibration strategy that converts oxygen-dependent signal variation from a source of error into a basis for real-time model selection. By combining oxygen-condition classification with condition-matched calibration, the platform markedly improves lactate measurement accuracy across aerobic and hypoxic conditions. This approach provides a practical framework for continuous biosensing in physiologically variable microenvironments.
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