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基于纸张的开放式微流控蛋白质电泳和免疫探测平台。

Paper-based open microfluidic platform for protein electrophoresis and immunoprobing.

机构信息

Hahn-Schickard, Freiburg, Germany.

Laboratory for MEMS Applications, IMTEK - Department of Microsystems Engineering, University of Freiburg, Freiburg, Germany.

出版信息

Electrophoresis. 2022 Feb;43(4):621-631. doi: 10.1002/elps.202100327. Epub 2021 Dec 23.

Abstract

Protein electrophoresis and immunoblotting are indispensable analytical tools for the characterization of proteins and posttranslational modifications in complex sample matrices. Owing to the lack of automation, commonly employed slab-gel systems suffer from high time demand, significant sample/antibody consumption, and limited reproducibility. To overcome these limitations, we developed a paper-based open microfluidic platform for electrophoretic protein separation and subsequent transfer to protein-binding membranes for immunoprobing. Electrophoresis microstructures were digitally printed into cellulose acetate membranes that provide mechanical stability while maintaining full accessibility of the microstructures for consecutive immunological analysis. As a proof-of-concept, we demonstrate separation of fluorescently labeled marker proteins in a wide molecular weight range (15-120 kDa) within only 15 min, reducing the time demand for the entire workflow (from sample preparation to immunoassay) to approximately one hour. Sample consumption was reduced 10- to 150-fold compared to slab-gel systems, owing to system miniaturization. Moreover, we successfully applied the paper-based approach to complex samples such as crude bacterial cell extracts. We envisage that this platform will find its use in protein analysis workflows for scarce and precious samples, providing a unique opportunity to extract profound immunological information from limited sample amounts in a fast fashion with minimal hands-on time.

摘要

蛋白质电泳和免疫印迹是分析复杂样品基质中蛋白质和翻译后修饰的不可或缺的分析工具。由于缺乏自动化,常用的平板凝胶系统存在时间需求高、样品/抗体消耗大以及重现性有限等问题。为了克服这些限制,我们开发了一种基于纸张的开放式微流控平台,用于电泳蛋白质分离,然后将其转移到蛋白质结合膜上进行免疫探测。电泳微结构被数字印刷到醋酸纤维素膜上,该膜提供机械稳定性,同时保持微结构的完全可及性,以进行连续的免疫学分析。作为概念验证,我们证明了在仅 15 分钟内就能分离出荧光标记的标记蛋白,分子量范围很宽(15-120 kDa),从而将整个工作流程(从样品制备到免疫测定)的时间需求缩短到大约一个小时。与平板凝胶系统相比,由于系统的小型化,样品消耗减少了 10 到 150 倍。此外,我们成功地将基于纸张的方法应用于复杂的样品,如粗细菌细胞提取物。我们设想该平台将在蛋白质分析工作流程中得到应用,用于稀缺和珍贵的样品,为从有限的样品量中快速提取深入的免疫学信息提供独特的机会,同时最大限度地减少手动操作时间。

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