Stoyanov Alexander V, Das Champak, Fredrickson Carl K, Fan Z Hugh
Department of Mechanical and Aerospace Engineering, McKnight Brain Institute, University of Florida, Gainesville 32611, USA.
Electrophoresis. 2005 Jan;26(2):473-9. doi: 10.1002/elps.200406170.
The conductivity properties of natural pH gradient created by carrier ampholytes were studied during the process of isoelectric focusing (IEF). IEF was performed in capillaries (10-30 mm long) or in microchips with the same channel length. A 10-30x reduction of the conductivity of the separation medium was observed during the establishment of pH gradient. Results obtained using different IEF voltages indicate that there is a nonlinear relationship between the conductivity of an established pH gradient and the applied electric field. Our theoretical analysis using a simplified model generated values that reasonably agree with the experimental data. In addition, we found that above a certain electric field ( approximately 300 V/cm), resolution does not increase with the applied voltage as predicated; we observed band-broadening and gel breakdown. The approach presented in this work can be used for optimization of the IEF separation and judicious selection of IEF conditions.
在等电聚焦(IEF)过程中,研究了载体两性电解质产生的天然pH梯度的导电特性。IEF在毛细管(10 - 30毫米长)或具有相同通道长度的微芯片中进行。在pH梯度建立过程中,观察到分离介质的电导率降低了10 - 30倍。使用不同IEF电压获得的结果表明,已建立的pH梯度的电导率与施加的电场之间存在非线性关系。我们使用简化模型进行的理论分析得出的值与实验数据合理吻合。此外,我们发现,在某个电场(约300 V/cm)以上,分辨率不会如预期那样随施加电压增加;我们观察到了谱带展宽和凝胶破裂。这项工作中提出的方法可用于优化IEF分离以及明智地选择IEF条件。