Department of Food Biotechnology, Dong-A University, Busan 49315, Republic of Korea.
Center for Sustainable Environment Research, Korea Institute of Science and Technology (KIST), Seoul 02792, Republic of Korea; Division of Energy and Environment Technology, KIST School, University of Science and Technology (UST), Seoul 02792, Republic of Korea.
Int J Biol Macromol. 2024 Aug;275(Pt 2):133605. doi: 10.1016/j.ijbiomac.2024.133605. Epub 2024 Jul 4.
The demand for glucose-sensing devices has increased along with the increasing diabetic population. Here, we aimed to construct a system with a glucose oxidase (GOx)-integrated Cu-nanoflower (Cu-NF) as the underlying electrode. This novel system was successfully developed by creating a cross-linked GOx within a Cu-NF matrix, forming a c-GOx@Cu-NF-coated film on a carbon screen-printed electrode (CSPE). A comparison of the stabilities of the cross-linking methods demonstrated enhanced durability, with an activity level of >88 % maintained after approximately 35 days of storage in room temperature buffer. Regarding the ability of the c-GOx@Cu-NF modified CSPE to detect glucose via electrochemical methods, the redox potential gap (ΔE) and peak current increased in the presence of GOx. In comparison to that of glucose, the sensitivity of c-GOx@Cu-NF was approximately 8 times greater than that of GOx@Cu-NF, with a detection limit of 0.649 μM and a linear range of 5-500 μM. It sustained an average relative activity of 80 % over 20 days. After 10 cycles of repeated use, the activity remained above 75 %. In terms of evaluating the electrode's specificity for glucose, the detection rate for individual similar substances was approximately 1 %. The introduction of a crosslinking strategy to Cu-NF, leading to enhanced mechanical stability and conductivity, improved the detection capability. Furthermore, this approach led to increased long-term storage stability and reusability, allowing for specific glucose detection. To our knowledge, this report represents the first demonstration of a c-GOx@Cu-NF system for integrating electrochemical biosensing devices into digital healthcare pathways, offering enhanced sensing accuracy and mechanical stability.
随着糖尿病患者人数的增加,对葡萄糖传感设备的需求也在增加。在这里,我们旨在构建一个系统,该系统将葡萄糖氧化酶(GOx)整合到铜纳米花(Cu-NF)中作为基础电极。通过在 Cu-NF 基质中创建交联的 GOx,成功地开发了这种新型系统,在碳印刷电极(CSPE)上形成了交联的 GOx@Cu-NF 涂层膜。交联方法稳定性的比较表明,其耐久性得到了增强,在室温缓冲液中储存约 35 天后,活性水平保持在>88%。关于 c-GOx@Cu-NF 修饰的 CSPE 通过电化学方法检测葡萄糖的能力,存在 GOx 时,氧化还原电位差(ΔE)和峰电流增加。与葡萄糖相比,c-GOx@Cu-NF 的灵敏度大约是 GOx@Cu-NF 的 8 倍,检测限为 0.649 μM,线性范围为 5-500 μM。它在 20 天内保持平均相对活性 80%。在重复使用 10 次后,活性仍保持在 75%以上。在评估电极对葡萄糖的特异性方面,单个类似物质的检测率约为 1%。在 Cu-NF 中引入交联策略,提高了机械稳定性和导电性,从而提高了检测能力。此外,这种方法提高了长期储存稳定性和可重复使用性,实现了特定的葡萄糖检测。据我们所知,这是首次将 c-GOx@Cu-NF 系统用于将电化学生物传感设备集成到数字医疗保健途径中,提高了传感准确性和机械稳定性。