Analysis of melatonin simulated metabolism based on electrochemistry coupled online with high performance liquid chromatography-mass spectrometry.

IF 2.7 3区 化学 Q2 CHEMISTRY, ANALYTICAL
Yanyan Niu, Lisi Wang, Yuxue Chen, Juan Zhou, Wei Sun
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Abstract

Online electrochemistry coupled with high-performance liquid chromatography-mass spectrometry (EC-HPLC-MS) technology has emerged as a powerful tool for simulating biological metabolism and pollutant degradation research due to its unique complementary advantages. This study focuses on melatonin, an important endogenous neuroendocrine hormone characterized by its indole ring structure, as a model compound to investigate electrochemical metabolic simulation. The metabolic process of melatonin was mimicked through linear sweep or constant-potential electrolysis, with the resulting electrolysis products directly transferred to an MS or HPLC-MS system for real-time separation and detection. Additionally, comparison with metabolites obtained via in vitro cultured liver microsome assays demonstrated substantial similarity in their phase I metabolite profiles. Electrochemically simulated metabolites exhibited markedly enhanced MS ion responses under optimized conditions. In contrast, phase II metabolites derived from electrochemical simulation diverged completely from microsomal metabolites, with both methods producing limited product diversity. The proposed EC-MS and EC-HPLC-MS approaches effectively address key limitations of traditional metabolic studies, including challenges in biological sample acquisition and metabolic process control, thereby offering a robust and reproducible alternative for metabolism research. It provides a promising strategy for further exploration of metabolic mechanisms, which is worthy of further improvement and promotion in pharmaceutical and environmental research.

基于电化学-高效液相色谱-质谱联用在线分析褪黑素模拟代谢。
在线电化学与高效液相色谱-质谱联用(EC-HPLC-MS)技术由于其独特的互补优势,已成为模拟生物代谢和污染物降解研究的有力工具。褪黑激素是一种重要的内源性神经内分泌激素,具有吲哚环结构,本研究将褪黑激素作为模型化合物进行电化学代谢模拟研究。通过线性扫描或恒电位电解模拟褪黑素的代谢过程,电解产物直接转移到MS或HPLC-MS系统进行实时分离和检测。此外,通过体外培养的肝微粒体测定获得的代谢物的比较表明,它们的I期代谢物谱具有实质性的相似性。电化学模拟代谢物在优化条件下表现出明显增强的MS离子响应。相比之下,电化学模拟得到的II期代谢物与微粒体代谢物完全不同,两种方法产生的产物多样性有限。所提出的EC-MS和EC-HPLC-MS方法有效地解决了传统代谢研究的主要局限性,包括生物样品采集和代谢过程控制方面的挑战,从而为代谢研究提供了一种可靠且可重复的替代方法。这为进一步探索代谢机制提供了一个有前景的策略,值得在制药和环境研究中进一步完善和推广。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Analytical Methods
Analytical Methods CHEMISTRY, ANALYTICAL-FOOD SCIENCE & TECHNOLOGY
CiteScore
5.10
自引率
3.20%
发文量
569
审稿时长
1.8 months
期刊介绍: Early applied demonstrations of new analytical methods with clear societal impact
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