Fu Lung-Ming, Lin Che-Hsin
Graduate Institute of Materials Engineering, National Pingtung University of Science and Technology, Pingtung, Taiwan.
Electrophoresis. 2004 Nov;25(21-22):3652-9. doi: 10.1002/elps.200406081.
An experimental and numerical investigation into the use of high-resolution injection techniques to separate DNA fragments within electrophoresis microchips is presented. The principal material transport mechanisms of electrokinetic migration, fluid flow, and diffusion are considered, and several variable-volume injection methods are discussed. A detailed analysis is provided of a double-L injection technique, which employs appropriate electrokinetic manipulations to reduce sample leakage within the microchip. The leakage effect in electroosmotic flow (EOF) is investigated using a sample composed of rhodamine B and Cy3 dye. Meanwhile, the effects of sample leakage in capillary electrophoresis (CE) separation are studied by considering the separation of 100-base pairs (bp) DNA ladders and HaeIII-digested PhiX-174 DNA samples. The present experimental and simulation results indicate that the unique injection system employed in the current microfluidic chip has the ability to replicate the functions of both the conventional cross-channel and the shift-channel injection systems. Furthermore, applying the double-L injection method to these two injection systems is shown to reduce sample leakage significantly. The proposed microfluidic chip and double-L injection technique developed in this study have an exciting potential for use in high-resolution, high-throughput biochemical analysis applications and in many other applications throughout the micrototal analysis systems field.
本文介绍了一项关于在电泳微芯片中使用高分辨率注射技术分离DNA片段的实验和数值研究。考虑了电动迁移、流体流动和扩散等主要物质传输机制,并讨论了几种可变体积注射方法。对双L形注射技术进行了详细分析,该技术采用适当的电动操作来减少微芯片内的样品泄漏。使用由罗丹明B和Cy3染料组成的样品研究了电渗流(EOF)中的泄漏效应。同时,通过考虑100个碱基对(bp)DNA梯和HaeIII消化的PhiX-174 DNA样品的分离,研究了样品泄漏在毛细管电泳(CE)分离中的影响。目前的实验和模拟结果表明,当前微流控芯片中采用的独特注射系统能够复制传统交叉通道和移位通道注射系统的功能。此外,将双L形注射方法应用于这两种注射系统可显著减少样品泄漏。本研究中开发的微流控芯片和双L形注射技术在高分辨率、高通量生化分析应用以及整个微全分析系统领域的许多其他应用中具有令人兴奋的潜力。