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用于毛细管电泳-质谱联用的低鞘流接口设计的改进及其在生物样品中的应用。

Evolution in the design of a low sheath-flow interface for CE-MS and application to biological samples.

作者信息

González-Ruiz Víctor, Codesido Santiago, Rudaz Serge, Schappler Julie

机构信息

School of Pharmaceutical Sciences, University of Geneva, University of Lausanne, Geneva, Switzerland.

Section of Mathematics, University of Geneva, Geneva, Switzerland.

出版信息

Electrophoresis. 2018 Mar;39(5-6):853-861. doi: 10.1002/elps.201700328. Epub 2017 Nov 29.

DOI:10.1002/elps.201700328
PMID:29124762
Abstract

Although several interfaces for CE-MS hyphenation are commercially available, the development of new versatile, simple and yet efficient and sensitive alternatives remains an important field of research. In a previous work, a simple low sheath-flow interface was developed from inexpensive parts. This interface features a design easy to build, maintain, and adapt to particular needs. The present work introduces an improved design of the previous interface. By reducing the diameter of the separation capillary and the emitter, a smaller Taylor cone is spontaneously formed, minimizing the zone dispersion while the analytes go through the interface and leading to less peak broadening associated to the ESI process. Numerical modeling allowed studying the mixing and diffusion processes taking place in the Taylor cone. The analytical performance of this new interface was tested with pharmaceutically relevant molecules and endogenous metabolites. The interface was eventually applied to the analysis of neural cell culture samples, allowing the identification of a panel of neurotransmission-related molecules. An excellent migration time repeatability was obtained (intra-day RSD <0.5% for most compounds, and <3.0% for inter-day precision). Most metabolites showed S/N ratios >10 with an injected volume of 6.7 nL of biological extract.

摘要

尽管有几种用于毛细管电泳-质谱联用(CE-MS)的接口在市场上有售,但开发新型通用、简单且高效灵敏的替代接口仍然是一个重要的研究领域。在之前的一项工作中,利用廉价部件开发了一种简单的低鞘流接口。该接口具有易于构建、维护且能适应特定需求的设计特点。目前的工作介绍了对先前接口的改进设计。通过减小分离毛细管和发射器的直径,会自发形成更小的泰勒锥,在分析物通过接口时使区域分散最小化,并减少与电喷雾电离(ESI)过程相关的峰展宽。数值模拟有助于研究泰勒锥中发生的混合和扩散过程。用与药物相关的分子和内源性代谢物测试了这种新接口的分析性能。该接口最终应用于神经细胞培养样品的分析,从而能够鉴定一组与神经传递相关的分子。获得了出色迁移时间重复性(大多数化合物日内相对标准偏差<0.5%,日间精密度<3.0%)。注入6.7 nL生物提取物时,大多数代谢物的信噪比>10。

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