Maynes Daniel, Tenny Joseph, Webbd Brent W, Lee Milton L
Department of Mechanical Engineering, Brigham Young University, Provo, UT 84602, USA.
Electrophoresis. 2008 Feb;29(3):549-60. doi: 10.1002/elps.200700204.
Recently the use electric field gradient focusing (EFGF) to enhance focusing of proteins has been proposed and explored to provide significant improvement in separation resolution. The objective of EFGF is to focus proteins of specific electrophoretic mobilities at distinct stationary locations in a column or channel. This can be accomplished in a capillary by allowing the electric potential to vary in the streamwise direction. Because the electric field is varying, so also is the electrokinetic force exerted on the proteins and the electroosmotic velocity of the buffer solution. Due to the varying electric field, the Taylor diffusion characteristics will also vary along the column, causing a degradation of peak widths of some proteins, dependent on their equilibrium positions and local velocity distributions. The focus of this paper is an analysis that allows characterization of the local Taylor diffusion and resulting protein band peak width as a function of the local magnitude of the EOF relative to the average fluid velocity for both cylindrical and rectangular channels. In general the analysis shows that as the ratio of the local electroosmotic velocity to the average velocity deviates from unity, the effective diffusion increases significantly. The effectiveness of EFGF devices over a range of protein diffusivities, capillary diameters, flow velocities, and electric field gradient is discussed.
最近,有人提出并探索了使用电场梯度聚焦(EFGF)来增强蛋白质聚焦,以显著提高分离分辨率。EFGF的目标是将具有特定电泳迁移率的蛋白质聚焦在柱或通道中不同的固定位置。这可以通过使毛细管中的电势沿流向变化来实现。由于电场在变化,作用于蛋白质的电动驱动力以及缓冲溶液的电渗速度也在变化。由于电场变化,泰勒扩散特性也会沿柱变化,导致一些蛋白质的峰宽变宽,这取决于它们的平衡位置和局部速度分布。本文的重点是进行分析,以表征局部泰勒扩散以及由此产生的蛋白质条带峰宽与圆柱通道和矩形通道中相对于平均流体速度的局部电渗流(EOF)大小的函数关系。一般来说,分析表明,当局部电渗速度与平均速度的比值偏离1时,有效扩散会显著增加。本文还讨论了EFGF装置在一系列蛋白质扩散系数、毛细管直径、流速和电场梯度范围内的有效性。