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Improved protein separation by microchip isoelectric focusing with stepwise gradient of electric field strength

机译:通过微芯片等电聚焦和电场强度的逐步梯度改善了蛋白质的分离

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摘要

A stepwise gradient of electric field strength was proposed for microchip IEF-based protein separation, by which after focusing at low voltages, IEF was performed by applying higher separation voltages step-by-step. A linear relationship between the focusing time and the inverse of the electric field strength was found. In addition, the conductivity of an established pH gradient showed a negative but nonlinear correlation with the applied voltage. Based on the above-mentioned results, a stepwise gradient of electric field strength, ranging from 160 to 1500 V/cm was applied in the separation of proteins extracted from Escherichia coli in a straight glass microchip channel permanently coated by polyacrylamide. Compared to the conventional separation performed under a constant field strength of 750 V/cm, the increased stepwise gradient of electric field strength resulted in improved resolution and decreased focusing time, while without the negative effects of joule heat for protein separation. All these results demonstrated that such a method might be of great significance to achieve high resolution and high-throughput analysis of complex protein samples for microchip IEF.
机译:对于基于微芯片基于IEF的蛋白质分离,提出了电场强度的逐步梯度,通过该梯度,在低电压聚焦后,通过逐步施加较高的分离电压来执行IEF。发现聚焦时间和电场强度的倒数之间的线性关系。此外,已建立的pH梯度的电导率与施加的电压呈负相关但呈非线性关系。基于上述结果,电场强度的逐步梯度在160至1500 V / cm的范围内,用于分离从大肠杆菌中提取的蛋白质,该蛋白质在永久覆盖有聚丙烯酰胺的直玻璃微芯片通道中。与在750 V / cm的恒定场强下进行的常规分离相比,电场强度的逐步梯度提高了分辨率,并缩短了聚焦时间,同时没有焦耳热对蛋白质分离的负面影响。所有这些结果表明,这种方法对于实现用于微芯片IEF的复杂蛋白样品的高分辨率和高通量分析可能具有重要意义。

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