基于重氮的衍生化技术可增强细胞中磷酸化代谢物的 LC-MS 检测。

IF 3.1 3区 医学 Q2 CHEMISTRY, ANALYTICAL Journal of pharmaceutical and biomedical analysis Pub Date : 2025-03-15 Epub Date: 2024-12-16 DOI:10.1016/j.jpba.2024.116642
Yikang Wang, Feifei Lin, Guozheng Zhu, Xiaoxue Zhou, Youhong Hu, Jia Liu
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引用次数: 0

摘要

磷酸化小分子代谢物在糖原代谢和炎症调节等生理过程中起着至关重要的作用。然而,由于其极性高、结构相似、色谱分离性差、质谱信号弱,难以准确定量,从而阻碍了相关代谢机制和疾病的研究。为了解决这些挑战,我们开发了一种新的衍生化试剂DMQX(5-重氮甲烷喹啉),并将其与液相色谱-质谱(LC-MS)相结合。该方法实现了五组同分异构体的基线分离,并实现了24种磷酸化代谢物的量化,提供了这些代谢物在生物学途径中的全面覆盖。我们应用该方法量化了有和没有水泡性口炎病毒感染的HepG2细胞中的21种内源性磷酸化代谢物,证明了该分析方法通过对生物样品中磷酸化代谢物的定量分析来推进代谢机制研究的潜力。
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Diazonium-based derivatization for enhanced detection of phosphorylated metabolites by LC-MS in cells.

Phosphorylated small molecule metabolites play crucial roles in physiological processes such as glycogen metabolism and inflammation regulation. However, their high polarity, structural similarity, poor chromatographic separation, and weak mass spectrometric signals make their accurate quantification challenging, thereby hindering the study of related metabolic mechanisms and diseases. To address these challenges, we developed a novel derivatization reagent, DMQX (5-diazomethane quinoxaline), and combined it with liquid chromatography-mass spectrometry (LC-MS). This approach achieved baseline separation of five groups of isomers and enabled the quantification of 24 phosphorylated metabolites, providing comprehensive coverage of these metabolites in biological pathways. We applied this method to quantify 21 endogenous phosphorylated metabolites in HepG2 cells with and without vesicular stomatitis virus infection, demonstrating the potential of this analytical approach for advancing the study of metabolic mechanisms through quantitative analysis of phosphorylated metabolites in biological samples.

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来源期刊
CiteScore
6.70
自引率
5.90%
发文量
588
审稿时长
37 days
期刊介绍: This journal is an international medium directed towards the needs of academic, clinical, government and industrial analysis by publishing original research reports and critical reviews on pharmaceutical and biomedical analysis. It covers the interdisciplinary aspects of analysis in the pharmaceutical, biomedical and clinical sciences, including developments in analytical methodology, instrumentation, computation and interpretation. Submissions on novel applications focusing on drug purity and stability studies, pharmacokinetics, therapeutic monitoring, metabolic profiling; drug-related aspects of analytical biochemistry and forensic toxicology; quality assurance in the pharmaceutical industry are also welcome. Studies from areas of well established and poorly selective methods, such as UV-VIS spectrophotometry (including derivative and multi-wavelength measurements), basic electroanalytical (potentiometric, polarographic and voltammetric) methods, fluorimetry, flow-injection analysis, etc. are accepted for publication in exceptional cases only, if a unique and substantial advantage over presently known systems is demonstrated. The same applies to the assay of simple drug formulations by any kind of methods and the determination of drugs in biological samples based merely on spiked samples. Drug purity/stability studies should contain information on the structure elucidation of the impurities/degradants.
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