首页> 外文期刊>Electrophoresis: The Official Journal of the International Electrophoresis Society >'Click' chemistry-based surface modification of poly(dimethylsiloxane) for protein separation in a microfluidic chip.
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'Click' chemistry-based surface modification of poly(dimethylsiloxane) for protein separation in a microfluidic chip.

机译:聚二甲基硅氧烷基于“点击”化学的表面修饰,用于微流控芯片中的蛋白质分离。

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"Click" chemistry-based surface modification strategy was developed for PDMS microchips to enhance separation performance for both amino acids and proteins. Alkyne-PEG was synthesized by a conventional procedure and then "click" grafted to azido-PDMS. FTIR absorption by attenuated total reflection and contact angle measurements proved efficient grafting of alkyne-PEG onto PDMS surface. Manifest EOF regulation and stability of PEG-functionalized PDMS microchips were illustrated via EOF measurements and protein adsorption investigations. The stability of nonspecific protein adsorption resistance property was investigated up to 30 days. Separation of fluorescence-labeled amino acids and proteins was further demonstrated with high repeatability and reproducibility. Comparison of protein separation using PDMS microchips before and after surface modification suggested greatly improved electrophoretic performance of the PEG-functionalized PDMS microchips. We expect the "click" chemistry-based surface modification method to have wide applications in microseparation of proteins with long-term surface stability.
机译:针对PDMS微芯片开发了基于“点击”化学的表面修饰策略,以增强氨基酸和蛋白质的分离性能。通过常规方法合成炔-PEG,然后“点击”接枝到叠氮基-PDMS。通过衰减的全反射和接触角测量得到的FTIR吸收证明炔烃PEG有效接枝到PDMS表面上。通过EOF测量和蛋白质吸附研究说明了PEG功能化PDMS微芯片的明显EOF调节和稳定性。研究了长达30天的非特异性蛋白质吸附抗性的稳定性。荧光标记的氨基酸和蛋白质的分离具有更高的可重复性和再现性。表面改性前后使用PDMS微芯片进行蛋白质分离的比较表明,PEG官能化的PDMS微芯片的电泳性能大大提高。我们期望基于“点击”化学的表面修饰方法在具有长期表面稳定性的蛋白质的微分离中具有广泛的应用。

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