Department of Biochemical Engineering, School of Chemical Engineering and Technology, Tianjin University, Tianjin, P. R. China.
Electrophoresis. 2010 Mar;31(5):944-51. doi: 10.1002/elps.200900257.
Electro-kinetic acceleration of protein mass transfer was studied by dynamic chromatographic experiments and computer simulations on IEC with an oscillatory transverse electric field (EF) perpendicular to the mobile-phase flow (pIEEC). The breakthrough behavior of BSA was investigated at different electric current densities. A two-dimensional mathematical model has been established to describe the electro-kinetic convection-diffusion behavior of protein adsorption in a single adsorbent particle. The equation was coupled with the axial dispersion model to simulate the dynamic adsorption process in the pIEEC. The model parameters were determined by independent experiments or calculations. It was found that protein adsorption led to an exponential decrease of intraparticle electro-kinetic flow with increasing protein adsorption. Taking this effect into consideration, the model calculations could well describe dynamic breakthrough curves. Moreover, protein distribution in adsorbents was observed to present excursion along the periodical oscillatory EF direction. At the beginning of pIEEC, intraparticle convection caused by the EF contributed more to the enhancement of dynamic binding capacity. Finally, it was confirmed that both the EOF and electrophoresis contributed to the acceleration of mass transfer.
通过在 IEC 上进行的动态色谱实验和计算机模拟,研究了蛋白质质量传递的电动加速,其中振荡横向电场 (EF) 垂直于流动相流 (pIEEC)。在不同电流密度下研究了 BSA 的突破行为。建立了一个二维数学模型来描述蛋白质在单个吸附剂颗粒中的吸附的电动对流-扩散行为。该方程与轴向扩散模型耦合,以模拟 pIEEC 中的动态吸附过程。通过独立的实验或计算确定模型参数。结果发现,蛋白质吸附导致颗粒内电动流动随着蛋白质吸附的增加而呈指数下降。考虑到这一影响,模型计算可以很好地描述动态突破曲线。此外,观察到蛋白质在吸附剂中的分布呈现沿着周期性振荡 EF 方向的偏移。在 pIEEC 的开始阶段,EF 引起的颗粒内对流对动态结合能力的增强贡献更大。最后,证实了 EOF 和电泳都有助于传质的加速。