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首页> 外文期刊>Microfluidics and nanofluidics >Improving the separation efficiency of DNA biosamples in capillary electrophoresis microchips using high-voltage pulsed DC electric fields
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Improving the separation efficiency of DNA biosamples in capillary electrophoresis microchips using high-voltage pulsed DC electric fields

机译:利用高压脉冲直流电场提高毛细管电泳微芯片中DNA生物样品的分离效率

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摘要

This paper proposes a simple method for enhancing the separation efficiency of DNA biosamples in a capillary electrophoresis (CE) microchip by using high-volf age pulsed DC electric fields. A high-voltage amplifier is used to establish electric fields of up to 1 kHz to carry out CE separation; electrophoresis and electroosmotic effects are then pulsely induced. The experimental and numerical investigations commence by separating a mixed sample comprising two fluoresceins with virtually identical physical properties, namely Rhodamine B and Rhodamine 6G. It is found that the level of separation is approximately 2.1 times higher than that achieved using a conventional DC electric field of the same intensity. The performance of the proposed method is further evaluated by separating a DNA sample of HaeIII digested ΦX-174 ladder. The experimental results indicate that the separation level of the neighboring peaks 5a and 5b in the DNA marker is approximately 1.2, which is significantly higher than the value of 0.8 obtained using a CE scheme with a conventional DC electric field. The improved separation performance of the proposed pulsed DC electric field approach is attributed to a lower Joule heating effect as a result of a lower average power input and the opportunity for heat dissipation during the zero-voltage stage of the pulse cycle. Overall, the results demonstrate that the method proposed in this study provides a simple, low-cost technique for achieving a high separation performance in CE microchips.
机译:本文提出了一种简单的方法,该方法利用高电压年龄脉冲直流电场提高毛细管电泳(CE)微芯片中DNA生物样品的分离效率。高压放大器用于建立高达1 kHz的电场以进行CE分离;然后脉冲诱导电泳和电渗作用。实验和数值研究从分离混合样品开始,该样品包含两种具有几乎相同物理性质的荧光素,即若丹明B和若丹明6G。发现分离水平比使用相同强度的常规DC电场所达到的分离水平高约2.1倍。通过分离HaeIII消化的ΦX-174梯形DNA样本,进一步评估了所提出方法的性能。实验结果表明,DNA标记中相邻峰5a和5b的分离水平约为1.2,这明显高于使用带有常规DC电场的CE方案获得的0.8的值。所提出的脉冲直流电场方法的改进的分离性能归因于较低的焦耳热效应,这是由于较低的平均功率输入和在脉冲周期的零电压阶段散热的机会。总体而言,结果表明本研究中提出的方法为实现CE微芯片的高分离性能提供了一种简单,低成本的技术。

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