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首页> 外文期刊>Rapid Communications in Mass Spectrometry: RCM >An experimental approach to enhance precursor ion fragmentation for metabolite identification studies: Application of dual collision cells in an orbital trap
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An experimental approach to enhance precursor ion fragmentation for metabolite identification studies: Application of dual collision cells in an orbital trap

机译:增强代谢物鉴定研究中前体离子碎片的实验方法:双碰撞池在轨道阱中的应用

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摘要

Recent advancements in mass spectrometry including data-dependent scanning and high-resolution mass spectrometry have aided metabolite profiling for non-radiolabeled xenobiotics. However, narrowing down a site of metabolism is often limited by the quality of the collision-induced dissociation (CID)-based precursor ion fragmentation. An alternative dissociation technique, higher energy collisional dissociation (HCD), enriches compound fragmentation and yields 'triple-quadrupole-like fragmentation'. Applying HCD along with CID and data-dependent scanning could enhance structural elucidation for small molecules. Liquid chromatography/multi-stage mass spectrometry (LC/MS ~n) experiments with CID and HCD fragmentation were carried out for commercially available compounds on a hybrid linear ion trap orbital trap mass spectrometer equipped with accurate mass measurement capability. The developed method included stepped normalized collision energy (SNCE) parameters to enhance MS fragmentation without tuning for individual compounds. All the evaluated compounds demonstrated improved fragmentation under HCD as compared with CID. The results suggest that an LC/MSn method that incorporated both SNCE HCD- and CID-enabled precursor ion fragmentation afforded comprehensive structural information for the compounds under investigation. A dual collision cell approach was remarkably better than one with only CID MS~n in an orbital trap. It is evident that such an acquisition method can augment the identification of unknown metabolites in drug discovery by improving fragmentation efficiency of both the parent compound and its putative metabolite(s).
机译:质谱技术的最新进展包括依赖数据的扫描和高分辨率质谱技术,已帮助对非放射性标记的异种生物进行代谢物分析。但是,缩小代谢位点通常受基于碰撞诱导解离(CID)的前体离子碎片质量的限制。另一种解离技术是高能碰撞解离(HCD),可富集化合物碎片,并产生“三重四极杆状碎片”。将HCD与CID和数据依赖型扫描一起应用可以增强对小分子的结构阐明。在配备有精确质量测量功能的混合线性离子阱轨道阱质谱仪上,对市售化合物进行了带有CID和HCD裂解的液相色谱/多级质谱(LC / MS〜n)实验。所开发的方法包括逐步归一化碰撞能量(SNCE)参数,以增强MS裂解而无需调整单个化合物。与CID相比,所有评估的化合物在HCD下均表现出更好的断裂效果。结果表明,结合了SNCE HCD和CID功能的前体离子裂解的LC / MSn方法为所研究的化合物提供了全面的结构信息。双碰撞电池方法明显优于轨道陷阱中只有CID MS_n的方法。显然,这种获取方法可以通过提高母体化合物及其推定代谢物的裂解效率来增加药物发现中未知代谢物的鉴定。

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