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Bilinear electric field gradient focusing

机译:双线性电场梯度聚焦

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摘要

Electric field gradient focusing (EFGF) uses an electric field gradient and a hydrodynamic counter flow to simultaneously separate and focus charged analytes in a channel. Previously, most EFGF devices were designed to form a linear field gradient in the channel. However, the peak capacity obtained using a linear gradient is not much better than what can be obtained using conventional CE. Dynamic improvement of peak capacity in EFGF can be achieved by using a nonlinear gradient. Numerical simulation results indicate that the peak capacity in a 4-cm long channel can be increased from 20 to 150 when changing from a linear to convex bilinear gradient. To demonstrate the increased capacity experimentally, an EFGF device with convex bilinear gradient was fabricated from poly(ethylene glycol) (PEG)-functionalized acrylic copolymers. The desired gradient profile was confirmed by measuring the focusing positions of a standard protein for different counter flow rates at constant voltage. Dynamically controlled elution of analytes was demonstrated using a monolith-filled bilinear EFGF channel. By increasing the flow rate, stacked proteins that were ordered but not resolved after focusing in the steep gradient segment were moved into the shallow gradient segment, where the analyte peak resolution increased significantly. In this way. the nonlinear field gradient was used to realize a dynamic increase in the peak capacity of the EFGF method.
机译:电场梯度聚焦(EFGF)使用电场梯度和流体动力逆流来同时分离和聚焦通道中带电的分析物。以前,大多数EFGF设备都设计为在通道中形成线性场梯度。然而,使用线性梯度获得的峰容量并不比使用常规CE可获得的峰容量好多少。通过使用非线性梯度可以动态提高EFGF的峰容量。数值模拟结果表明,当从线性渐变为凸双线性渐变时,在4 cm长的通道中的峰值容量可以从20增加到150。为了通过实验证明容量的增加,由聚(乙二醇)(PEG)功能化的丙烯酸共聚物制造了具有凸双线性梯度的EFGF设备。通过在恒定电压下针对不同逆流速率测量标准蛋白质的聚焦位置,可以确定所需的梯度曲线。使用单块填充的双线性EFGF通道证明了动态控制分析物的洗脱。通过增加流速,在陡峭的梯度段聚焦后有序但未解析的堆叠蛋白被移入了浅梯度段,其中分析物的峰分辨率显着提高。通过这种方式。使用非线性场梯度来实现EFGF方法峰容量的动态增加。

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