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Updated: May 6, 2026

Multi-analyte Biochip MAB Based on All-solid-state Ion-selective Electrodes ASSISE for Physiological Research
Published on: April 18, 2013
Flexible multi-enzyme biosensor based on MOF-74/Argdot biomimetic mineralization for dynamic multi-analyte monitoring
Ping Gao1, Qiang Zhang2, Jing Sun3
1School of Chemistry and Environmental Engineering, Changchun University of Science and Technology, Jilin Provincial Science and Technology Innovation Center of Optical Materials and Chemistry, Jilin Provincial International Joint Research Center of Photo functional Materials and Chemistry, Changchun 130022, PR China; Zhongshan Institute of Changchun University of Science and Technology, Zhongshan 528400, PR China.
Abstract:
Although natural enzymes exhibit high selectivity and catalytic efficiency, their complex structures and inherent variability limit the long-term monitoring capabilities. Metal-organic frameworks (MOFs) biomimetic mineralization offers stability protection for enzymes, but it increases diffusion obstruction and reduces activity of encapsulated enzymes. To overcome these challenges, a biosensor based on MOF-74 biomimetic mineralization of three enzymes and combined with arginine-derived carbon dots (Argdot) was designed for monitoring key indicators (glucose, lactic acid, and xanthine) of muscle fatigue. The Boron‑nitrogen co-doped porous carbon nanospheres/reduced graphene oxide electrode (B,NMCNS/rGO) was used as the sensing substrate and the MOF-74/enzyme/Argdot was served as selective recognition layer. The detection sensitivities for glucose, lactic acid, and xanthine are 182.4 nA μM-1 cm-2, 386.6 nA mM-1 cm-2, and 207.6 nA μM-1 cm-2. The sensors exhibit excellent linear ranges that fully encompass the physiological concentration intervals of all three biomarkers in sweat, and maintain over 94 % of its current response over 60 day-storage. Experiments conducted under several conditions demonstrate that the sensing system can dynamically monitor the variation of glucose, lactic acid, and xanthine in sweat. This study highlights the considerable promise of a noninvasive and continuous sensing system for point-of-care assessment and effective management in sports health.
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