Zheng Jinjian, Yeung Edward S
Ames Laboratory-USDOE and Department of Chemistry, Iowa State University, Ames 50011, USA.
Anal Chem. 2002 Sep 1;74(17):4536-47. doi: 10.1021/ac0257344.
We report the unexpected radial migration of DNA molecules in capillary electrophoresis (CE) with applied Poiseuille flow. Such movement can contribute to anomalous migration times, peak dispersion, and size and shape selectivity in CE. When Poiseuille flow is applied from the cathode to the anode, DNA molecules move toward the center of the capillary, forming a narrow, highly concentrated zone. Conversely, when the flow is applied from the anode to the cathode, DNA molecules move toward the walls, leaving a DNA-depleted zone around the axis. We showed that the deformation and orientation of DNA molecules under Poiseuille flow was responsible for the radial migration. By analyzing the forces acting on the deformed and oriented DNA molecules, we derived an expression for the radial lift force, which explained our results very well under different conditions with Poiseuille flow only, electrophoresis only, and the combination of Poiseuille flow and electrophoresis. Factors governing the direction and velocity of radial migration were elucidated. Potential applications of this phenomenon include an alternative to sheath flow in flow cytometry, improving precision and reliability of single-molecule detection, reduction of wall adsorption, and size separation with a mechanism akin to field-flow fractionation. On the negative side, nonuniform electroosmotic flow along the capillary or microfluidic channel is common in CE, and radial migration of certain analytes cannot be neglected.
我们报道了在施加泊肃叶流的毛细管电泳(CE)中DNA分子意外的径向迁移。这种迁移会导致CE中出现异常迁移时间、峰展宽以及尺寸和形状选择性。当从阴极向阳极施加泊肃叶流时,DNA分子向毛细管中心移动,形成一个狭窄的、高度浓缩的区域。相反,当从阳极向阴极施加流时,DNA分子向管壁移动,在轴周围留下一个DNA耗尽区。我们表明,泊肃叶流下DNA分子的变形和取向是径向迁移的原因。通过分析作用于变形和取向的DNA分子上的力,我们推导出了径向升力的表达式,该表达式在仅存在泊肃叶流、仅存在电泳以及泊肃叶流和电泳相结合的不同条件下都能很好地解释我们的结果。阐明了控制径向迁移方向和速度的因素。这种现象的潜在应用包括替代流式细胞术中的鞘流、提高单分子检测的精度和可靠性、减少壁吸附以及通过类似于场流分级的机制进行尺寸分离。不利的一面是,在CE中沿毛细管或微流体通道的非均匀电渗流很常见,某些分析物的径向迁移不可忽视。