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Tunable Membranes for Free-Flow Zone Electrophoresis in PDMS Microchip Using Guided Self-Assembly of Silica Microbeads

机译:用于pDms微芯片中自由流动区电泳的可调谐膜,使用二氧化硅微珠的引导自组装

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摘要

In this paper, we evaluate the strategy of using self-assembled microbeads to build a robust and tunable membrane for free-flow zone electrophoresis in a PDMS microfluidic chip. To fabricate a porous membrane as a salt bridge for free-flow zone electrophoresis, we used silica or polystyrene microbeads between 3–6 μm in diameter and packed them inside a microchannel. After complete evaporation, we infiltrated the porous microbead structure with a positively or negatively charged hydrogel to modify its surface charge polarity. Using this device, we demonstrated binary sorting (separation of positive and negative species at a given pH) of peptides and dyes in standard buffer systems without using sheath flows. The sample loss during sorting could be minimized by using ion selectivity of hydrogel-infiltrated microbead membranes. Our fabrication method enables building a robust membrane for pressure-driven free-flow zone electrophoresis with tunable pore size as well as surface charge polarity.
机译:在本文中,我们评估了使用自组装微珠为PDMS微流控芯片中的自由流动区电泳构建坚固且可调的膜的策略。为了制造多孔膜作为自由流动区电泳的盐桥,我们使用了直径在3–6μm之间的二氧化硅或聚苯乙烯微珠,并将它们填充在微通道中。完全蒸发后,我们用带正电或带负电的水凝胶渗透多孔微珠结构,以改变其表面电荷极性。使用此设备,我们证明了在标准缓冲液系统中无需使用鞘流的情况下,肽和染料的二元分选(在给定的pH下分离阳性和阴性物质)。通过使用水凝胶浸润的微珠膜的离子选择性,可以将分选过程中的样品损失降至最低。我们的制造方法能够为压力驱动的自由流动区电泳构建坚固的膜,并具有可调的孔径和表面电荷极性。

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