Electrokinetic techniques applied to electrochemical DNA biosensors

电动现象 纳米技术 生物传感器 纳米孔 电极 材料科学 DNA 化学 生物化学 物理化学
作者
Mònica Mir,Sergio Martínez‐Rodríguez,Óscar Castillo-Fernández,Antoni Homs-Corbera,Josep Samitier
出处
期刊:Electrophoresis [Wiley]
卷期号:32 (8): 811-821 被引量:13
标识
DOI:10.1002/elps.201000487
摘要

Abstract Electrokinetic techniques are contact‐free methods currently used in many applications, where precise handling of biological entities, such as cells, bacteria or nucleic acids, is needed. These techniques are based on the effect of electric fields on molecules suspended in a fluid, and the corresponding induced motion, which can be tuned according to some known physical laws and observed behaviours. Increasing interest on the application of such strategies in order to improve the detection of DNA strands has appeared during the recent decades. Classical electrode‐based DNA electrochemical biosensors with combined electrokinetic techniques present the advantage of being able to improve the working electrode's bioactive part during their fabrication and also the hybridization yield during the sensor detection phase. This can be achieved by selectively manipulating, driving and directing the molecules towards the electrodes increasing the speed and yield of the floating DNA strands attached to them. On the other hand, this technique can be also used in order to make biosensors reusable, or reconfigurable, by simply inverting its working principle and pulling DNA strands away from the electrodes. Finally, the combination of these techniques with nanostructures, such as nanopores or nanochannels, has recently boosted the appearance of new types of electrochemical sensors that exploit the time‐varying position of DNA strands in order to continuously scan these molecules and to detect their properties. This review gives an insight into the main forces involved in DNA electrokinetics and discusses the state of the art and uses of these techniques in recent years.
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