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Rapid separation of bacteriorhodopsin using a laminar-flow extraction system in a microfluidic device

机译:在微流控设备中使用层流萃取系统快速分离细菌视紫红质

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摘要

A protein separation technology using the microfluidic device was developed for the more rapid and effective analysis of target protein. This microfluidic separation system was carried out using the aqueous two-phase system (ATPS) and the ionic liquid two-phase system (ILTPS) for purification method of the protein sample, and the three-flow desalting system was used for the removal of salts from the sucrose-rich sample. Partitioning of the protein sample was observed in ATPS or ILTPS with the various pHs. The microdialysis system was applied to remove small molecules, such as sucrose and salts in the microfluidic channel with the different flow rates of buffer phase. A complex purification method, which combines microdialysis and ATPS or ILTPS, was carried out for the effective purification of bacteriorhodopsin (BR) from the purple membrane of Halobacterium salinarium, which was then analyzed by sodium dodecyl sulfatepolyacrylamide gel electrophoresis and matrix-assisted laser desorption∕ionization time-of-flight. Furthermore, we were able to make a stable three-phase flow controlling the flow rate in the microfluidic channel. Our complex purification methods were successful in purifying and recovering the BR to its required value.
机译:开发了一种使用微流控设备的蛋白质分离技术,可以更快速,有效地分析目标蛋白质。该微流体分离系统是使用水两相系统(ATPS)和离子液体两相系统(ILTPS)进行蛋白质样品的纯化方法,而三流脱盐系统则用于去除盐分来自富含蔗糖的样品。在具有不同pH值的ATPS或ILTPS中观察到蛋白质样品的分配。应用微透析系统去除微流体通道中具有不同缓冲液流速的小分子,例如蔗糖和盐。结合微透析和ATPS或ILTPS进行了复杂的纯化方法,以从盐杆菌的紫色膜中有效纯化细菌视紫红质,然后用​​十二烷基硫酸钠聚丙烯酰胺凝胶电泳和基质辅助激光解吸分析laser电离飞行时间。此外,我们能够进行稳定的三相流控制,以控制微流体通道中的流速。我们复杂的纯化方法成功地将BR纯化并回收至所需值。

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