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首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >Microfluidic integration of Western blotting is enabled by electrotransfer-assisted sodium dodecyl sulfate dilution
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Microfluidic integration of Western blotting is enabled by electrotransfer-assisted sodium dodecyl sulfate dilution

机译:电转移辅助十二烷基硫酸钠稀释可实现蛋白质印迹的微流体整合

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We integrate sodium dodecyl sulfate polyacrylamide gel electrophoresis (SDS-PAGE) with subsequent antibody probing in a single, monolithic microdevice to realize microfluidic Western blotting. A hurdle to successful on-chip Western blotting lies in restoring antibody recognition of previously sized (denatured, reduced) proteins. To surmount this hurdle, we locally dilute free SDS from SDS–protein complexes using differential electromigration of the species during electrotransfer between SDS-PAGE and blotting regions of a microchamber. Local dilution of SDS minimizes re-association of SDS with proteins offering means to restore antibody binding affinity to proteins after SDS-PAGE. To achieve automated, programmable operation in a single instrument, we utilize a 1 × 2 mm2 glass microchamber photopatterned with spatially distinct, contiguous polyacrylamide regions for SDS-PAGE, electrotransfer, and antibody blotting. Optimization of both the SDS-PAGE and electrotransfer conditions yields transfer distances of <1 mm (40 s). The Western blot is completed in 180 s, with fully automated assay operation using programmable voltage control. After SDS-PAGE and electrotransfer, we observe ~80% capture of protein band mass on the blotting region for a model protein, C-reactive protein. This novel microfluidic Western blot approach introduces fine transport control for in-transit protein handling to form the basis for an automated, rapid alternative to conventional slab-gel Western blotting.
机译:我们将十二烷基硫酸钠聚丙烯酰胺凝胶电泳(SDS-PAGE)与随后的抗体探测整合到单个整体式微设备中,以实现微流体蛋白质印迹。成功进行芯片上蛋白质印迹的障碍在于恢复对先前大小的蛋白质(变性,还原)的抗体识别。为了克服这一障碍,我们在SDS-PAGE和微腔印迹区域之间进行电转移的过程中,利用物种的差异电迁移,从SDS-蛋白质复合物中局部稀释了SDS。 SDS的局部稀释最大程度地减少了SDS与蛋白质的重新结合,从而提供了在SDS-PAGE后恢复抗体与蛋白质的结合亲和力的手段。为了在单个仪器中实现自动化的可编程操作,我们利用1×2 mm2的玻璃微腔室进行光图案化,并在空间上不同的连续聚丙烯酰胺区域进行SDS-PAGE,电转移和抗体印迹。 SDS-PAGE和电转移条件的优化均可产生小于1毫米(40 s)的转移距离。 Western印迹可在180 s内完成,并使用可编程电压控制进行全自动测定操作。经过SDS-PAGE和电转移后,我们观察到模型蛋白C反应蛋白的印迹区域捕获了约80%的蛋白条带。这种新颖的微流控蛋白质印迹方法为转运蛋白的处理引入了精细的运输控制,为常规平板凝胶蛋白质印迹的自动化,快速替代奠定了基础。

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