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首页> 外文期刊>Analytical chemistry >Gradient elution moving boundary electrophoresis for high-throughput multiplexed microfluidic devices
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Gradient elution moving boundary electrophoresis for high-throughput multiplexed microfluidic devices

机译:高通量多路复用微流控设备的梯度洗脱移动边界电泳

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A novel method for performing electrophoretic separations is describedgradient elution moving boundary electrophoresis (GEMBE). The technique utilizes the electrophoretic migration of chemical species in combination with variable hydrodynamic bulk counterflow of the solution through a separation capillary or microfluidic channel. Continuous sample introduction is used, eliminating the need for a sample injection mechanism. Only analytes with an electrophoretic velocity greater than the counterflow velocity enter the separation channel. The counterflow velocity is varied over time so that each analyte is brought into the separation column at different times, allowing for high-resolution separations in very short channels. The new variable of bulk flow acceleration affords a new selectivity parameter to electrophoresis analogous to gradient elution compositions in chromatography. Because it does not require extra channels or access ports to form an injection zone and because separations can be performed in very short channels, GEMBE separations can be implemented in much smaller areas on a micro-fluidic chip as compared to conventional capillary electrophoresis. Demonstrations of GEMBE separations of small dye molecules, amino acids, DNA, and immunoassay products are presented. A low-cost, polymeric, eight-channel multiplexed microfluidic device was fabricated to demonstrate the reduced area requirements of GEMBE; the device was less than 1 in.(2) in area and required only n + 1 fluidic access ports per n analyses (in this instance, nine ports for eight analyses). Parallel separations of fluorescein and carboxyfluorescein yielded less than 3% relative standard deviation (RSD) in interchannel migration times and less than 5% RSD in both peak and height measurements. The device was also used to generate a calibration curve for a homogeneous insulin immunoassay using each of the eight channels as a calibration point with less than 5% RSD at each point with replicate analyses.
机译:一种进行电泳分离的新方法被描述为梯度洗脱移动边界电泳(GEMBE)。该技术利用了化学物质的电泳迁移,结合了通过分离毛细管或微流体通道的溶液的可变流体动力学逆流。使用连续的样品引入,无需样品注入机制。只有电泳速度大于逆流速度的分析物才能进入分离通道。逆流速度会随时间变化,因此每种分析物会在不同的时间进入分离柱,从而可以在非常短的通道中进行高分辨率分离。新的体积流加速度变量为电泳提供了新的选择性参数,类似于色谱中的梯度洗脱组合物。因为不需要额外的通道或进入端口来形成注射区,并且因为可以在非常短的通道中进行分离,所以与传统的毛细管电泳相比,GEMBE分离可以在微流控芯片上的较小区域内进行。介绍了小染料分子,氨基酸,DNA和免疫测定产品的GEMBE分离演示。制造了一种低成本的聚合物八通道多路复用微流控设备,以证明GEMBE减少了面积要求。该设备的面积不到1英寸(2),每n次分析仅需要n + 1个流体通道(在这种情况下,需要9个端口进行8次分析)。荧光素和羧基荧光素的平行分离在通道间迁移时间中产生的相对标准偏差(RSD)小于3%,在峰高测量中的相对标准偏差小于5%。该设备还用于生成均质胰岛素免疫分析的校准曲线,该方法使用八个通道中的每一个作为校准点,每个点的RSD均小于5%,并进行重复分析。

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