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Controlling nonspecific protein adsorption in a plug-based microfluidic system by controlling interfacial chemistry using fluorous-phase surfactants

机译:通过使用氟相表面活性剂控制界面化学来控制基于塞子的微流体系统中非特异性蛋白质的吸附

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摘要

Control of surface chemistry and protein adsorption is important for using microfluidic devices for biochemical analysis and high-throughput screening assays. This paper describes the control of protein adsorption at the liquid-liquid interface in a plug-based microfluidic system. The microfluidic system uses multiphase flows of immiscible fluorous and aqueous fluids to form plugs, which are aqueous droplets that are completely surrounded by fluorocarbon oil and do not come into direct contact with the hydrophobic surface of the microchannel. Protein adsorption at the aqueous-fluorous interface was controlled by using surfactants; that were soluble in fluorocarbon oil but insoluble in aqueous solutions. Three perfluorinated alkane surfactants capped with different functional groups were used: a carboxylic acid, an alcohol, and a triethylene glycol group that was synthesized from commercially available materials. Using complementary methods of analysis, adsorption was characterized for several proteins (bovine serum albumin (BSA) and fibrinogen), including enzymes (ribonuclease A (RNase A) and alkaline phosphatase). These complementary methods involved characterizing adsorption in microliter-sized droplets by drop tensiometry and in nanoliter plugs by fluorescence microscopy and kinetic measurements of enzyme catalysis. The oligoethylene glycol-capped surfactant prevented protein adsorption in all cases. Adsorption of proteins to the carboxylic acid-capped surfactant in nanoliter plugs could be described by using the Langmuir model and tensiometry results for microliter drops. The microfluidic system was fabricated using rapid prototyping in poly(dimethylsiloxane) (PDMS). Black PDMS microfluidic devices, fabricated by curing a suspension of charcoal in PDMS, were used to measure the changes in fluorescence intensity more sensitively. This system will be useful for microfluidic bioassays, enzymatic kinetics, and protein crystallization, because it does not require surface modification during fabrication to control surface chemistry and protein adsorption.
机译:表面化学和蛋白质吸附的控制对于使用微流体设备进行生化分析和高通量筛选分析非常重要。本文介绍了在基于塞的微流体系统中液-液界面处蛋白质吸附的控制。微流体系统使用不溶混的氟和水性流体的多相流来形成塞子,塞子是完全被氟碳油包围并且不与微通道的疏水性表面直接接触的水性液滴。通过使用表面活性剂控制在水-氟界面上的蛋白质吸附。溶于氟碳油但不溶于水溶液。使用了三种由不同官能团封端的全氟烷烃表面活性剂:羧酸,醇和三乙二醇基团,这些化合物是由可商购的材料合成的。使用互补的分析方法,表征了几种蛋白质(牛血清白蛋白(BSA)和纤维蛋白原)的吸附,包括酶(核糖核酸酶A(RNase A)和碱性磷酸酶)。这些互补方法涉及通过滴定张力法表征微升大小的液滴中的吸附,并通过荧光显微镜和酶催化动力学测量表征纳升塞子中的吸附。在所有情况下,低聚乙二醇封端的表面活性剂均阻止蛋白质吸附。可以通过使用Langmuir模型和微升滴的张力测定结果来描述蛋白质在纳升塞子中被羧酸封端的表面活性剂的吸附。使用聚(二甲基硅氧烷)(PDMS)中的快速原型制作了微流体系统。通过固化木炭在PDMS中的悬浮液制成的黑色PDMS微流控设备用于更灵敏地测量荧光强度的变化。该系统可用于微流体生物测定,酶动力学和蛋白质结晶,因为在制造过程中不需要表面修饰即可控制表面化学和蛋白质吸附。

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