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High Performance of Cyclic Olefin Copolymer-Based Capillary Electrophoretic Chips

机译:高性能基于环烯烃共聚物的毛细管电泳芯片

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摘要

This paper demonstrates a simple, one step, and low cost surface modification technique for producing cyclic olefin copolymer (COC) polymer-based microcapillary electrophoresis chips consisting highly hemocompatible microchannels by UV-photografting with N-vinylpyrrolidone (NVP) monomer. An optimal condition has been identified to achieve the best surface grafting process. It has been found that this surface treatment enables extremely high surface wettability, hemocompatibility, and bond strength to the microchannels. The surface grafting was confirmed by attenuated total reflection Fourier transform-infrared spectroscopic (ATR-FTIR) study. In vitro protein adsorption using fluorescent labeled bovine serum albumin (FITC-BSA) into the COC microchannel results indicates that the modified chips have excellent protein resistance ability because of the increase of surface hydrophilicity. Hence, the modified chips showed fast, reproducible and high efficient separations of proteins (up to 51 000 theoretical plates per meter). Moreover, this surface modification process show no loss in the optical transparency to the modified microchannel surfaces: an important requirement for real capillary electrophoresis since the fluorescent intensity is directly related to the amount of adsorbed protein on the surface. Therefore, we believe that this simple and promising route of surface modification could be very useful for developing high performance COC microfluidic devices for the separation of proteins, amino acids, and other biomolecules.
机译:本文演示了一种简单,一步和低成本的表面改性技术,该技术可通过使用N-乙烯基吡咯烷酮(NVP)单体进行紫外光接枝来生产基于环血共聚物的微通道电泳芯片,该芯片由高度血液相容性微通道组成。确定了最佳条件以实现最佳的表面接枝过程。已经发现,这种表面处理能够实现极高的表面润湿性,血液相容性以及与微通道的结合强度。通过嫁接衰减全反射傅立叶变换红外光谱(ATR-FTIR)研究确认了表面接枝。使用荧光标记的牛血清白蛋白(FITC-BSA)体外蛋白吸附到COC微通道中的结果表明,由于表面亲水性的提高,修饰的芯片具有出色的蛋白抗性。因此,修饰的芯片显示出快速,可重现和高效的蛋白质分离(每米最多51 000个理论塔板)。而且,该表面修饰过程对修饰的微通道表面没有显示出光学透明性的损失:这是真正的毛细管电泳的重要要求,因为荧光强度直接与表面上吸附的蛋白质的量有关。因此,我们相信,这种简单而有希望的表面修饰途径对于开发用于分离蛋白质,氨基酸和其他生物分子的高性能COC微流体装置非常有用。

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