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在复制成型的硫醇-烯微流控器件上进行的水相和非水相微芯片电泳与芯片上电喷雾电离质谱联用。

Aqueous and non-aqueous microchip electrophoresis with on-chip electrospray ionization mass spectrometry on replica-molded thiol-ene microfluidic devices.

作者信息

Tähkä Sari M, Bonabi Ashkan, Jokinen Ville P, Sikanen Tiina M

机构信息

Faculty of Pharmacy, Drug Research Programme, Viikinkaari 5E, FI-00014, University of Helsinki, Helsinki, Finland.

Department of Materials Science and Engineering, School of Chemical Technology, Aalto University, Tietotie 3, FI-00076 Aalto, Espoo, Finland.

出版信息

J Chromatogr A. 2017 May 5;1496:150-156. doi: 10.1016/j.chroma.2017.03.018. Epub 2017 Mar 14.

Abstract

This work describes aqueous and non-aqueous capillary electrophoresis on thiol-ene-based microfluidic separation devices that feature fully integrated and sharp electrospray ionization (ESI) emitters. The chip fabrication is based on simple and low-cost replica-molding of thiol-ene polymers under standard laboratory conditions. The mechanical rigidity and the stability of the materials against organic solvents, acids and bases could be tuned by adjusting the respective stoichiometric ratio of the thiol and allyl ("ene") monomers, which allowed us to carry out electrophoresis separation in both aqueous and non-aqueous (methanol- and ethanol-based) background electrolytes. The stability of the ESI signal was generally ≤10% RSD for all emitters. The respective migration time repeatabilities in aqueous and non-aqueous background electrolytes were below 3 and 14% RSD (n=4-6, with internal standard). The analytical performance of the developed thiol-ene microdevices was shown in mass spectrometry (MS) based analysis of peptides, proteins, and small molecules. The theoretical plate numbers were the highest (1.2-2.4×10m) in ethanol-based background electrolytes. The ionization efficiency also increased under non-aqueous conditions compared to aqueous background electrolytes. The results show that replica-molding of thiol-enes is a feasible approach for producing ESI microdevices that perform in a stable manner in both aqueous and non-aqueous electrophoresis.

摘要

这项工作描述了基于硫醇-烯的微流控分离装置上的水性和非水性毛细管电泳,该装置具有完全集成且尖锐的电喷雾电离(ESI)发射器。芯片制造基于在标准实验室条件下对硫醇-烯聚合物进行简单且低成本的复制成型。通过调整硫醇和烯丙基(“烯”)单体各自的化学计量比,可以调节材料对有机溶剂、酸和碱的机械刚性和稳定性,这使我们能够在水性和非水性(基于甲醇和乙醇)背景电解质中进行电泳分离。对于所有发射器,ESI信号的稳定性通常≤10%相对标准偏差。在水性和非水性背景电解质中各自的迁移时间重复性低于3%和14%相对标准偏差(n = 4 - 6,有内标)。所开发的硫醇-烯微型装置的分析性能在基于质谱(MS)的肽、蛋白质和小分子分析中得到了展示。在基于乙醇的背景电解质中理论塔板数最高(1.2 - 2.4×10⁵)。与水性背景电解质相比,在非水性条件下电离效率也有所提高。结果表明,硫醇-烯的复制成型是生产在水性和非水性电泳中均能稳定运行的ESI微型装置的一种可行方法。

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