School of Chemistry, Institute of Science, Suranaree University of Technology, 111 University Ave., Nakhon Ratchasima 30000, Thailand.
Synchrotron Light Research Institute (Public Organization), 111 University Ave., Nakhon Ratchasima 30000, Thailand.
Biosensors (Basel). 2024 Mar 28;14(4):161. doi: 10.3390/bios14040161.
We designed and optimized a glucose biosensor system based on a screen-printed electrode modified with the NAD-GDH enzyme. To enhance the electroactive surface area and improve the electron transfer efficiency, we introduced graphene oxide (GO) and ferrocene-modified linear poly(ethylenimine) (LPEI-Fc) onto the biosensor surface. This strategic modification exploits the electrostatic interaction between graphene oxide, which possesses a negative charge, and LPEI-Fc, which is positively charged. This interaction results in increased catalytic current during glucose oxidation and helps improve the overall glucose detection sensitivity by amperometry. We integrated the developed glucose sensor into a flow injection (FI) system. This integration facilitates a swift and reproducible detection of glucose, and it also mitigates the risk of contamination during the analyses. The incorporation of an FI system improves the efficiency of the biosensor, ensuring precise and reliable results in a short time. The proposed sensor was operated at a constant applied potential of 0.35 V. After optimizing the system, a linear calibration curve was obtained for the concentration range of 1.0-40 mM (R = 0.986). The FI system was successfully applied to determine the glucose content of a commercial sports drink.
我们设计并优化了一种基于修饰有 NAD-GDH 酶的丝网印刷电极的葡萄糖生物传感器系统。为了增加电活性表面积并提高电子转移效率,我们将氧化石墨烯(GO)和二茂铁修饰的线性聚(乙二胺)(LPEI-Fc)引入生物传感器表面。这种策略性修饰利用了带负电荷的氧化石墨烯与带正电荷的 LPEI-Fc 之间的静电相互作用。这种相互作用导致在葡萄糖氧化过程中产生更大的催化电流,并通过安培法帮助提高整体葡萄糖检测灵敏度。我们将开发的葡萄糖传感器集成到流动注射(FI)系统中。这种集成促进了葡萄糖的快速和可重复检测,并减轻了分析过程中污染的风险。FI 系统的采用提高了生物传感器的效率,确保在短时间内获得精确可靠的结果。该传感器在 0.35 V 的恒定施加电位下运行。在优化系统后,获得了 1.0-40 mM 浓度范围内的线性校准曲线(R = 0.986)。FI 系统成功应用于测定商业运动饮料中的葡萄糖含量。