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首页> 外文期刊>Journal of mass spectrometry: JMS >Energy-resolved mass spectrometry for differentiation of the fluorine substitution position on the phenyl ring of fluoromethcathinones
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Energy-resolved mass spectrometry for differentiation of the fluorine substitution position on the phenyl ring of fluoromethcathinones

机译:能量分辨质谱法,用于将氟取代位置分化在荧光血管素苯环上的分化

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A reliable method for structural analysis is crucial for the forensic investigation of new psychoactive substances (NPSs). Towards this end, mass spectrometry is one of the most efficient and facile methods for the identification of NPSs. However, the differentiation among 2-, 3-, and 4-fluoromethcathinones (o-, m-, and p-FMCs), which are ring-fluorinated positional isomers part of the major class of NPSs referred to as synthetic cathinones, remains a challenge. This is mostly due to their similar retention properties and nearly identical full scan mass spectra, which hinder their identification. In this study, we describe a novel and practical method for differentiating the fluorine substitution position on the phenyl ring of FMCs, based on energy-resolved mass spectrometry (ERMS) using an electron ionization-triple quadrupole mass spectrometer. ERMS measurements showed that the three FMC positional isomers exhibited differences in relative abundances of both the fluorophenyl cation (m/z 95) and the fluorobenzoyl cation (m/z 123). The logarithmic plots of the abundance ratio of these two cations (m/z 95 to m/z 123) as a function of the collision energy (CE) followed the order of o-FMC p-FMC m-FMC at each CE, which allowed the three isomers to be unambiguously and reliably differentiated. The theoretical dissociation energy calculations confirmed the relationship obtained by ERMS analyses, and additional ERMS measurements of methylmethcathinone positional isomers showed that the differences in abundance among the FMCs were attributed to the differences in their collision-induced dissociation reactivities arising from the halogen-induced resonance effects on the phenyl ring. Moreover, the method for differentiation described herein was successfully applied to the actual samples containing seized drugs. We expect that the described methodology will also contribute significantly to the reliable and accurate structural identification of NPSs in the fields of therapeutic
机译:结构分析的可靠方法对于对新的精神活性物质(NPS)的法医调查至关重要。朝向该端,质谱是鉴定NPS的最有效和容易的方法之一。然而,2-,3-和4-荧光虫草酮(O-,M-和P-FMC)之间的分化,它们是主要的NPS的含环氟化位置异构体,仍然是一个挑战。这主要是由于它们类似的保留特性和几乎相同的全扫描质谱,这阻碍了其识别。在本研究中,我们描述了一种基于使用电子电离 - 三重四极杆质谱仪的能量分辨质谱(ERMS)对FMCs的苯环上的苯环上的氟取代位置的新颖和实用方法。 ERMS测量表明,三种FMC位置异构体表现出氟苯基阳离子(M / Z 95)和氟苯甲酰阳离子(M / Z 123)的相对丰度的差异。作为碰撞能量(CE)的函数的这两个阳离子(M / z 95至M / z 123)的丰度比的对数图在每个CE处遵循O-FMC P-FMC M-FMC的顺序允许三个异构体明确且可靠地分化。理论解离能量计算证实了ERMS分析所获得的关系,以及甲基甲烷酮位置异构体的另外的ERMS测量结果表明,FMCs中丰度的差异归因于卤素诱导的共振效应产生的碰撞诱导的解离再现的差异在苯环上。此外,本文所述的分化方法成功地应用于含有所捕获的药物的实际样品。我们预计所描述的方法也将显着促进治疗性领域中NPS的可靠和准确的结构鉴定

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