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基于分段微流控技术的色谱柱填充技术。

Segmented Microfluidics-Based Packing Technology for Chromatographic Columns.

机构信息

Department of Chemistry and The MOE Key Laboratory of Spectrochemical Analysis and Instrumentation, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen 361005, China.

Xiamen Medical College, Xiamen 361023, China.

出版信息

Anal Chem. 2021 Jun 22;93(24):8450-8458. doi: 10.1021/acs.analchem.1c00545. Epub 2021 Jun 10.

Abstract

Nanoflow liquid chromatography-mass spectrometry (NanoLC-MS) has become the method of choice for the analysis of complex biological systems, especially when the available sample amount is limited. The preparation of high-performance capillary columns for nanoLC use is still a technical challenge. Here, we report a segmented microfluidic method for the preparation of packed capillary columns, where liquid segments were used as soft, dynamic, and well-dispersed slurry reservoirs for carrying and delivering micrometer packing particles. Based on this microfluidic packing technology, the column bed was assembled layer-by-layer at a 50 μm resolution, and ultralong capillary columns of 3, 5, and 10 m were fabricated in such a manner. The microfluidically packed columns demonstrated excellent separation efficiencies of 116 000 plates/m. The higher efficiencies obtained at higher slurry concentrations also indicate that a high-quality packed bed can be obtained without sacrificing the packing speed. Kinetic performance limit analysis shows that the microfluidic packed columns have higher peak capacity production efficiency in the high-resolution region, presenting an improved separation impedance of 2800, which is significantly better than columns packed with the conventional slurry packing method. In comparison with a commercial nanoLC column, a 5 m long microfluidic packed column was evaluated for proteomic analysis using a standard HeLa protein digest and presented 261% improvement in peptide identification capability, resulting in significantly enhanced protein identification confidence.

摘要

纳升液相色谱-质谱联用 (NanoLC-MS) 已成为分析复杂生物系统的首选方法,特别是在可用样品量有限的情况下。用于纳升液相色谱的高性能毛细管柱的制备仍然是一个技术挑战。在这里,我们报告了一种用于制备填充毛细管柱的分段微流控方法,其中液体段用作携带和输送微米级填充颗粒的软、动态和良好分散的浆料储液器。基于这种微流控填充技术,以 50 µm 的分辨率逐层组装柱床,并以这种方式制造了 3、5 和 10 m 的超长毛细管柱。微流控填充柱表现出优异的分离效率,达到了 116000 plates/m。在更高的浆料浓度下获得的更高效率也表明,可以在不牺牲填充速度的情况下获得高质量的填充床。动力学性能极限分析表明,微流控填充柱在高分辨率区域具有更高的峰容量生产效率,呈现出改进的分离阻抗 2800,明显优于采用传统浆料填充方法填充的柱。与商业纳升液相色谱柱相比,使用标准的 HeLa 蛋白质消化物对 5 m 长的微流控填充柱进行了蛋白质组学分析评估,在肽鉴定能力方面提高了 261%,从而显著提高了蛋白质鉴定的置信度。

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