Naikoo Gowhar A, Awan Tasbiha, Salim Hiba, Arshad Fareeha, Hassan Israr U, Pedram Mona Zamani, Ahmed Waqar, Faruck Hakkim L, Aljabali Alaa A A, Mishra Vijay, Serrano-Aroca Ángel, Goyal Rohit, Negi Poonam, Birkett Martin, Nasef Mohamed M, Charbe Nitin B, Bakshi Hamid A, Tambuwala Murtaza M
Department of Mathematics and Sciences College of Arts and Applied Sciences, Dhofar University Salalah Oman.
Department of Biochemistry Aligarh Muslim University Aligarh India.
Bioeng Transl Med. 2021 Sep 9;7(1):e10248. doi: 10.1002/btm2.10248. eCollection 2022 Jan.
More than five decades have been invested in understanding glucose biosensors. Yet, this immensely versatile field has continued to gain attention from the scientific world to better understand and diagnose diabetes. However, such extensive work done to improve glucose sensing devices has still not yielded desirable results. Drawbacks like the necessity of the invasive finger-pricking step and the lack of optimization of diagnostic interventions still need to be considered to improve the testing process of diabetic patients. To upgrade the glucose-sensing devices and reduce the number of intermediary steps during glucose measurement, fourth-generation glucose sensors (FGGS) have been introduced. These sensors, made using robust electrocatalytic copper nanostructures, improve diagnostic efficiency and cost-effectiveness. This review aims to present the essential scientific progress in copper nanostructure-based FGGS in the past 10 years (2010 to present). After a short introduction, we presented the working principles of these sensors. We then highlighted the importance of copper nanostructures as advanced electrode materials to develop reliable real-time FGGS. Finally, we cover the advantages, shortcomings, and prospects for developing highly sensitive, stable, and specific FGGS.
五十多年来,人们一直在致力于了解葡萄糖生物传感器。然而,这个极为通用的领域仍然不断受到科学界的关注,以便更好地理解和诊断糖尿病。然而,为改进葡萄糖传感设备所做的如此大量的工作仍未产生理想的结果。为了改善糖尿病患者的检测过程,仍需考虑一些缺点,比如有创指尖采血步骤的必要性以及诊断干预缺乏优化等问题。为了升级葡萄糖传感设备并减少葡萄糖测量过程中的中间步骤数量,已引入了第四代葡萄糖传感器(FGGS)。这些使用坚固的电催化铜纳米结构制成的传感器提高了诊断效率和成本效益。本综述旨在介绍过去十年(2010年至今)基于铜纳米结构的FGGS的重要科学进展。在简短介绍之后,我们阐述了这些传感器的工作原理。然后,我们强调了铜纳米结构作为先进电极材料对于开发可靠的实时FGGS的重要性。最后,我们探讨了开发高灵敏度、稳定性和特异性FGGS的优势、缺点及前景。