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通过使用微流控伪阀将等电聚焦与多通道凝胶电泳相结合。

Integration of isoelectric focusing with multi-channel gel electrophoresis by using microfluidic pseudo-valves.

作者信息

Das Champak, Zhang Jiyou, Denslow Nancy D, Fan Z Hugh

机构信息

Department of Mechanical and Aerospace Engineering, University of Florida, PO Box 116250, Gainesville, FL 32611, USA.

出版信息

Lab Chip. 2007 Dec;7(12):1806-12. doi: 10.1039/b712794d. Epub 2007 Sep 13.

DOI:10.1039/b712794d
PMID:18030404
Abstract

Two-dimensional (2D) protein separation is achieved in a plastic microfluidic device by integrating isoelectric focusing (IEF) with multi-channel polyacrylamide gel electrophoresis (PAGE). IEF (the first dimension) is carried out in a 15 mm-long channel while PAGE (the second dimension) is in 29 parallel channels of 65 mm length that are orthogonal to the IEF channel. An array of microfluidic pseudo-valves is created for introducing different separation media, without cross-contamination, in both dimensions; it also allows transfer of proteins from the first to the second dimension. Fabrication of pseudo-valves is achieved by photo-initiated, in situ gel polymerization; acrylamide and methylenebisacrylamide monomers are polymerized only in the PAGE channels whereas polymerization does not take place in the IEF channel where a mask is placed to block the UV light. IEF separation medium, carrier ampholytes, can then be introduced into the IEF channel. The presence of gel pseudo-valves does not affect the performance of IEF or PAGE when they are investigated separately. Detection in the device is achieved by using a laser induced fluorescence imaging system. Four fluorescently-labeled proteins with either similar pI values or close molecular weight are well separated, demonstrating the potential of the 2D electrophoresis device. The total separation time is less than 10 minutes for IEF and PAGE, an improvement of 2 orders of magnitude over the conventional 2D slab gel electrophoresis.

摘要

通过将等电聚焦(IEF)与多通道聚丙烯酰胺凝胶电泳(PAGE)相结合,在塑料微流控装置中实现了二维(2D)蛋白质分离。IEF(第一维)在一个15毫米长的通道中进行,而PAGE(第二维)在29个与IEF通道正交的65毫米长的平行通道中进行。创建了一系列微流控伪阀,用于在两个维度上引入不同的分离介质,且不会发生交叉污染;它还允许蛋白质从第一维转移到第二维。伪阀的制造是通过光引发原位凝胶聚合实现的;丙烯酰胺和亚甲基双丙烯酰胺单体仅在PAGE通道中聚合,而在放置了掩膜以阻挡紫外线的IEF通道中不发生聚合。然后可以将IEF分离介质两性电解质引入IEF通道。当分别研究凝胶伪阀时,其存在不会影响IEF或PAGE的性能。该装置中的检测通过激光诱导荧光成像系统实现。四种具有相似pI值或相近分子量的荧光标记蛋白质得到了很好的分离,证明了二维电泳装置的潜力。IEF和PAGE的总分离时间不到10分钟,比传统的二维平板凝胶电泳提高了2个数量级。

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