State Key Laboratory of Food Science and Technology, Nanchang University, Nanchang 330047, China; Key Laboratory of Coastal Environmental Processes and Ecological Remediation; Research Centre for Coastal Environmental Engineering and Technology, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai 264003, China.
Key Laboratory of Coastal Environmental Processes and Ecological Remediation; Research Centre for Coastal Environmental Engineering and Technology, Yantai Institute of Coastal Zone Research, Chinese Academy of Sciences, Yantai 264003, China.
Biosens Bioelectron. 2018 Jul 30;112:54-71. doi: 10.1016/j.bios.2018.04.028. Epub 2018 Apr 17.
One pressing concern today is to construct sensors that can withstand various disturbances for highly selective and sensitive detecting trace analytes in complicated samples. Molecularly imprinted polymers (MIPs) with tailor-made binding sites are preferred to be recognition elements in sensors for effective targets detection, and fluorescence measurement assists in highly sensitive detection and user-friendly control. Accordingly, molecular imprinting-based fluorescence sensors (MI-FL sensors) have attracted great research interest in many fields such as chemical and biological analysis. Herein, we comprehensively review the recent advances in MI-FL sensors construction and applications, giving insights on sensing principles and signal transduction mechanisms, focusing on general construction strategies for intrinsically fluorescent or nonfluorescent analytes and improvement strategies in sensing performance, particularly in sensitivity. Construction strategies are well overviewed, mainly including the traditional indirect methods of competitive binding against pre-bound fluorescent indicators, employment of fluorescent functional monomers and embedding of fluorescence substances, and novel rational designs of hierarchical architecture (core-shell/hollow and mesoporous structures), post-imprinting modification, and ratiometric fluorescence detection. Furthermore, MI-FL sensor based microdevices are discussed, involving micromotors, test strips and microfluidics, which are more portable for rapid point-of-care detection and in-field diagnosing. Finally, the current challenges and future perspectives of MI-FL sensors are proposed.
当前有一个紧迫的问题,就是要构建能够承受各种干扰的传感器,以便在复杂的样品中对痕量分析物进行高度选择性和灵敏的检测。具有定制结合位点的分子印迹聚合物(MIPs)被优先用作传感器中的识别元件,以便有效地进行目标检测,而荧光测量有助于实现高灵敏度检测和用户友好型控制。因此,基于分子印迹的荧光传感器(MI-FL 传感器)在化学和生物分析等许多领域引起了极大的研究兴趣。在此,我们全面回顾了 MI-FL 传感器构建和应用的最新进展,深入了解了传感原理和信号转导机制,重点介绍了针对本征荧光或非荧光分析物的通用构建策略以及在传感性能方面,特别是在灵敏度方面的改进策略。构建策略得到了很好的概述,主要包括针对预结合荧光指示剂的竞争性结合的传统间接方法、荧光功能单体的使用和荧光物质的嵌入,以及分层结构(核壳/空心和介孔结构)、印迹后修饰和比率荧光检测的新型合理设计。此外,还讨论了基于 MI-FL 传感器的微器件,包括微马达、测试条和微流控,它们更便于快速进行即时护理检测和现场诊断。最后,提出了 MI-FL 传感器的当前挑战和未来展望。