Dielectrophoretic manipulation of surface-bound DNA.

W A Germishuizen, C Walti, P Tosch, R Wirtz, M Pepper, A G Davies, A P J Middelberg
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引用次数: 12

Abstract

Dielectrophoretic manipulation enables the positioning and orientation of DNA molecules for nanometer-scale applications. However, the dependence of the dielectrophoretic force and torque on the electric field magnitude and frequency has to be well characterised to realise fully the potential of this technique. DNA in solution is attracted to the strongest electric field gradient (i.e. the electrode edge) as a result of the dielectrophoretic force, while the dielectrophoretic torque aligns the DNA with its longest axis parallel to the electric field. In this work, the authors attached -DNA fragments (48 and 25 kilobases) to an array of gold microelectrodes via a terminal thiol bond and characterised the orientation and elongation as a function of electric field magnitude (0.1-0.8 MVm) and frequency (0.08-1.1 MHz). Maximum elongation was observed between 200 and 500 kHz for the attached DNA. Dielectrophoresis is limited by thermal randomisation at electric fields below 0.1 MVm and by electrothermal effects above 0.7 MVm. The authors conclude that dielectrophoresis can be used to manipulate surface-immobilised DNA reproducibly.

表面结合DNA的介电泳操作。
介电泳操作使DNA分子的定位和取向纳米级的应用。然而,介电泳力和转矩对电场大小和频率的依赖性必须很好地表征才能充分发挥该技术的潜力。由于介电泳力的作用,溶液中的DNA被吸引到最强的电场梯度(即电极边缘),而介电泳扭矩使DNA的最长轴与电场平行。在这项工作中,作者通过末端硫醇键将dna片段(48和25千碱基)连接到金微电极阵列上,并将取向和延伸率表征为电场大小(0.1-0.8 MVm)和频率(0.08-1.1 MHz)的函数。所附DNA的最大延伸率在200 ~ 500 kHz之间。在低于0.1 MVm的电场和高于0.7 MVm的电热效应下,双电泳受到热随机化的限制。作者得出结论,介电泳可用于操作表面固定DNA的可重复性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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