Uzumer Tugce Yagmur, Cete Servet, Tekeli Yener, Altuner Elif Esra
Department of Chemistry, Institute of Science, Gazi University, Ankara, Turkey.
Pharmacy Faculty, Adiyaman University, Adiyaman, Turkey.
Biotechnol Appl Biochem. 2024 Dec;71(6):1440-1452. doi: 10.1002/bab.2640. Epub 2024 Aug 7.
In this study, a new amperometric biosensor was developed for glucose determination. For this purpose, polyaniline-polypyrrole-poly(sodium-4-styrenesulfonate) film was prepared by electropolymerization of aniline and pyrrole with poly(sodium-4-styrenesulfonate) on a platinum plate. The best working conditions of the polyaniline-polypyrrole-poly(sodium-4-styrenesulfonate) film were determined. The glucose oxidase enzyme was immobilized by the entrapment method in polyaniline-polypyrrole-poly(sodium-4-styrenesulfonate) film. Glucose determination was made based on the oxidation of hydrogen peroxide, which is formed as a result of the enzymatic reaction on the surface of the prepared biosensor at +0.40 V. The working range for the glucose determination of the biosensor was determined. The effects of pH and temperature on the response of the glucose biosensor were investigated. The reusability and shelf life of the biosensor were determined. The effects of interference in biological environments on the response of the biosensor were investigated. Glucose determination was made in the biological fluid (blood) with the prepared biosensor. This study has a feature that sheds light on biosensor studies to be developed for the detection of substances in the human body, such as glucose, uric acid, and urea. This article will set an example for future scientific research on the development of a sensor for other biological fluids in the human body, such as the sensor developed for blood samples. In addition, this developed sensor provides an innovation that improves the quality of life of patients by allowing them to constantly monitor their glucose levels and intervene when necessary.
在本研究中,开发了一种用于测定葡萄糖的新型安培生物传感器。为此,通过在铂板上使苯胺和吡咯与聚(4-苯乙烯磺酸钠)进行电聚合制备了聚苯胺-聚吡咯-聚(4-苯乙烯磺酸钠)膜。确定了聚苯胺-聚吡咯-聚(4-苯乙烯磺酸钠)膜的最佳工作条件。采用包埋法将葡萄糖氧化酶固定在聚苯胺-聚吡咯-聚(4-苯乙烯磺酸钠)膜中。基于在制备的生物传感器表面酶促反应产生的过氧化氢在+0.40 V下的氧化来进行葡萄糖测定。确定了生物传感器测定葡萄糖的工作范围。研究了pH和温度对葡萄糖生物传感器响应的影响。确定了生物传感器的可重复使用性和保质期。研究了生物环境中的干扰对生物传感器响应的影响。使用制备的生物传感器对生物流体(血液)中的葡萄糖进行了测定。本研究具有为开发用于检测人体中葡萄糖、尿酸和尿素等物质的生物传感器研究提供启示的特点。本文将为未来关于开发用于人体其他生物流体的传感器(如为血液样本开发的传感器)的科学研究树立榜样。此外,这种开发的传感器通过允许患者持续监测其血糖水平并在必要时进行干预,提供了一项改善患者生活质量的创新。