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解吸电喷雾电离质谱法:摇头丸非法片剂的直接毒理学筛查与分析

Desorption electrospray ionization mass spectrometry: direct toxicological screening and analysis of illicit Ecstasy tablets.

作者信息

Leuthold Luc Alexis, Mandscheff Jean-François, Fathi Marc, Giroud Christian, Augsburger Marc, Varesio Emmanuel, Hopfgartner Gérard

机构信息

Life Sciences Mass Spectrometry, School of Pharmaceutical Sciences, EPGL, University of Geneva, Switzerland.

出版信息

Rapid Commun Mass Spectrom. 2006;20(2):103-10. doi: 10.1002/rcm.2280.

Abstract

Desorption electrospray ionization mass spectrometry (DESI-MS) was used as a simple and rapid way to analyze drug tablets and powders without sample preparation. Experiments were performed with a home-made DESI source coupled to a triple-quadrupole linear-ion trap (QqQ(LIT)) mass spectrometer. Twenty-one commercial drugs as well as some illicit Ecstasy tablets and powders were analyzed. MS spectra almost exclusively showed the protonated or deprotonated ion of the drug after directing the pneumatically assisted electrospray onto the tablet's surface. With some tablets, inhomogeneity of the surface resulted in different spectra depending on the spot analyzed, thus showing that DESI could be used for imaging. Directly triggered MS/MS spectra were used for confirmatory analysis, with analysis times often below 10 s per tablet. For illicit Ecstasy tablets, DESI-MS, GC/MS and LC/MS analyses provided similar qualitative results for the main analytes. With MS/MS spectra library comparison or exact mass measurements, this technique could become very powerful for the rapid analysis of unknown tablets and shows the great potential of desorption techniques as an alternative to solution-based analysis.

摘要

解吸电喷雾电离质谱法(DESI-MS)被用作一种无需样品制备即可简单快速地分析药物片剂和粉末的方法。实验使用了一个与三重四极杆线性离子阱(QqQ(LIT))质谱仪相连的自制DESI源进行。分析了21种商业药物以及一些非法摇头丸片剂和粉末。将气动辅助电喷雾引导至片剂表面后,质谱图几乎只显示了药物的质子化或去质子化离子。对于一些片剂,表面的不均匀性导致根据所分析的斑点不同而产生不同的光谱,从而表明DESI可用于成像。直接触发的MS/MS光谱用于确证分析,每片的分析时间通常低于10秒。对于非法摇头丸片剂,DESI-MS、GC/MS和LC/MS分析对主要分析物提供了相似的定性结果。通过MS/MS光谱库比较或精确质量测量,该技术对于未知片剂的快速分析可能会变得非常强大,并显示了解吸技术作为基于溶液分析的替代方法的巨大潜力。

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