State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin 130022, China.
State Key Laboratory of Electroanalytical Chemistry, Changchun Institute of Applied Chemistry, Chinese Academy of Sciences, Changchun, Jilin 130022, China.
Biosens Bioelectron. 2016 Feb 15;76:80-90. doi: 10.1016/j.bios.2015.05.037. Epub 2015 May 15.
Electrochemical biosensors have played active roles at the forefront of bioanalysis because they have the potential to achieve sensitive, specific and low-cost detection of biomolecules and many others. Engineering the electrochemical sensing interface with functional nanomaterials leads to novel electrochemical biosensors with improved performances in terms of sensitivity, selectivity, stability and simplicity. Functional nanomaterials possess good conductivity, catalytic activity, biocompatibility and high surface area. Coupled with bio-recognition elements, these features can amplify signal transduction and biorecognition events, resulting in highly sensitive biosensing. Additionally, microfluidic electrochemical biosensors have attracted considerable attention on account of their miniature, portable and low-cost systems as well as high fabrication throughput and ease of scaleup. For example, electrochemical enzymetic biosensors and aptamer biosensors (aptasensors) based on the integrated microchip can be used for portable point-of-care diagnostics and environmental monitoring. This review is a summary of our recent progress in the field of electrochemical biosensors, including aptasensors, cytosensors, enzymatic biosensors and self-powered biosensors based on biofuel cells. We presented the advantages that functional nanomaterials and microfluidic chip technology bring to the electrochemical biosensors, together with future prospects and possible challenges.
电化学生物传感器在生物分析的前沿领域发挥了积极作用,因为它们具有实现生物分子和其他许多物质的敏感、特异和低成本检测的潜力。通过功能纳米材料来设计电化学传感界面,可得到具有改进的灵敏度、选择性、稳定性和简单性的新型电化学生物传感器。功能纳米材料具有良好的导电性、催化活性、生物相容性和高表面积。与生物识别元件结合后,这些特性可以放大信号转导和生物识别事件,从而实现高灵敏度的生物传感。此外,由于其微型化、便携化和低成本系统以及高制造吞吐量和易于扩展,微流控电化学生物传感器引起了相当大的关注。例如,基于集成微芯片的电化学酶生物传感器和适体生物传感器(适配体传感器)可用于便携式即时诊断和环境监测。本综述总结了我们在电化学生物传感器领域的最新进展,包括适配体传感器、细胞传感器、酶生物传感器和基于生物燃料电池的自供电生物传感器。我们展示了功能纳米材料和微流控芯片技术为电化学生物传感器带来的优势,以及未来的前景和可能面临的挑战。