Cetinkaya Ahmet, Kaya S Irem, Ozkan Sibel A
Department of Analytical Chemistry, Gülhane Faculty of Pharmacy, University of Health Sciences, Ankara, Türkiye; Hacettepe University, Faculty of Pharmacy, Department of Analytical Chemistry, Ankara, Türkiye.
Department of Analytical Chemistry, Gülhane Faculty of Pharmacy, University of Health Sciences, Ankara, Türkiye.
Anal Chim Acta. 2025 Jul 1;1357:344080. doi: 10.1016/j.aca.2025.344080. Epub 2025 Apr 17.
In terms of analytical applications, researchers aim to design and develop sensitive, selective, and effective sensors that can be used for diagnostic purposes and disease monitoring. Point-of-care (POC) and lab-on-a-chip (LOC) systems stand out as transformative systems that meet expectations and achieve goals from both perspectives. POC devices produce reliable results quickly, facilitating patient-friendly diagnostics. LOC technology, a combination of biosensors, electronics, optics, and microfluidics, directly reflects the progress in downsizing analytical techniques.
Electrochemical sensors have a lot of potential for use in POC and LOC systems because of their high sensitivity, accuracy, specificity, low detection limits, downsizing possibilities, affordability, and ease of use. Because of their enhanced chemical and physical stability and their chemically modifiable micro- and nanoscale characteristics, molecularly imprinted polymers (MIPs) are particularly interesting for use as recognition components in POC and LOC applications. MIP-based sensors have great promise in being integrated with POC and LOC devices for application in biomedical analysis.
This review study discusses thoroughly how MIP-based electrochemical sensors can support the expanding field of POC/LOC diagnostics through these cutting-edge technologies. The novelty of this review study is that it specifically addresses the integration of electrochemical MIP sensors into both POC and LOC systems in terms of biomedical applications. It focuses only on the potential of MIP-based electrochemical sensors and brings together studies integrated into POC and LOC platforms.
在分析应用方面,研究人员旨在设计和开发灵敏、选择性高且有效的传感器,用于诊断目的和疾病监测。即时检测(POC)和芯片实验室(LOC)系统作为满足期望并从这两个角度实现目标的变革性系统脱颖而出。POC设备能快速产生可靠结果,便于进行患者友好型诊断。LOC技术是生物传感器、电子学、光学和微流体学的结合,直接反映了分析技术小型化的进展。
电化学传感器因其高灵敏度、准确性、特异性、低检测限、小型化可能性、可承受性和易用性,在POC和LOC系统中有很大的应用潜力。分子印迹聚合物(MIP)因其增强的化学和物理稳定性以及可化学修饰的微纳米级特性,特别适合用作POC和LOC应用中的识别组件。基于MIP的传感器在与POC和LOC设备集成以用于生物医学分析方面有很大前景。
本综述研究深入探讨了基于MIP的电化学传感器如何通过这些前沿技术支持POC/LOC诊断这一不断扩展的领域。本综述研究的新颖之处在于,它具体从生物医学应用角度探讨了电化学MIP传感器在POC和LOC系统中的集成。它仅关注基于MIP的电化学传感器的潜力,并汇集了集成到POC和LOC平台的研究。