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毛细管电泳与负模式电喷雾电离质谱联用,采用电动泵浦的纳米喷雾接口,玻璃发射器内部接枝有伯胺。

Capillary electrophoresis coupled to negative mode electrospray ionization-mass spectrometry using an electrokinetically-pumped nanospray interface with primary amines grafted to the interior of a glass emitter.

作者信息

Sarver Scott A, Schiavone Nicole M, Arceo Jennifer, Peuchen Elizabeth H, Zhang Zhenbin, Sun Liangliang, Dovichi Norman J

机构信息

Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, IN 46556, USA.

Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, IN 46556, USA.

出版信息

Talanta. 2017 Apr 1;165:522-525. doi: 10.1016/j.talanta.2017.01.002. Epub 2017 Jan 3.

Abstract

We demonstrate an electrokinetically pumped sheath flow nanospray interface for capillary electrophoresis coupled to negative mode electrospray mass spectrometry. In this interface, application of an electric field generates electro-osmotic flow at the interior of a glass emitter that is pulled to a 10-20µm inner diameter orifice. Electro-osmotic flow pumps liquid around the distal tip of the separation capillary, ensheathing analyte into the electrospray electrolyte. In negative ion mode, negative potential applied to an untreated glass emitter drives sheath flow away from the emitter orifice, decreasing the stability and efficiency of the spray. In this manuscript, we treat a portion of the interior of the electrospray emitter with 3-aminopropyltrimethoxysilane, which grafts primary amines to the interior. The amines take on a positive charge, which reverses electro-osmosis and generates stable sheath flow to the emitter orifice under negative potential. Negative mode operation is demonstrated by analyzing a metabolite extract from stage 1 Xenopus laevis embryos. Production of the treated emitters was quite reproducible. We evaluated the performance of three emitters using a set of amino acids; the relative standard deviation in peak intensity was 7% for the most intense component.

摘要

我们展示了一种用于毛细管电泳与负模式电喷雾质谱联用的电动泵鞘流纳米喷雾接口。在该接口中,施加电场会在玻璃发射器内部产生电渗流,该发射器被拉制成内径为10 - 20μm的孔口。电渗流将液体泵送到分离毛细管的远端周围,将分析物包裹到电喷雾电解质中。在负离子模式下,施加到未处理玻璃发射器上的负电位会使鞘流从发射器孔口流出,降低喷雾的稳定性和效率。在本论文中,我们用3 - 氨丙基三甲氧基硅烷处理电喷雾发射器内部的一部分,使伯胺接枝到内部。胺带正电荷,这会逆转电渗作用,并在负电位下产生稳定的流向发射器孔口的鞘流。通过分析非洲爪蟾胚胎1期的代谢物提取物来证明负离子模式的操作。处理后的发射器的生产具有相当高的可重复性。我们使用一组氨基酸评估了三个发射器的性能;最强烈组分的峰强度相对标准偏差为7%。

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