Hainan Engineering Research Center of Tropical Ocean Advanced Optoelectronic Functional Materials, Key Laboratory of Laser Technology and Optoelectronic Functional Materials of Hainan Province, Key Laboratory of Functional Materials and Photoelectrochemistry of Haikou, College of Chemistry and Chemical Engineering, Hainan Normal University, Haikou, 571158, China.
Anal Bioanal Chem. 2024 Apr;416(10):2541-2551. doi: 10.1007/s00216-024-05227-7. Epub 2024 Mar 7.
In this study, an online electrochemistry coupling high-performance liquid chromatography-mass spectrometry (EC-HPLC-MS) technology has been developed for simulating metabolic reactions and rapid analysis of metabolites of flavone, quercetin, and rutin, which are not only widely present compounds with pharmacological activity in nature, but also have structural similarity and variability. The simulated metabolic processes of the substrates (phase I and phase II metabolism) were implemented on the surface of glassy carbon electrode (GCE) by using different electrochemical methods. After online chromatographic separation, the products were transmitted to a mass spectrometer for detection, in order to speculate relevant reaction pathways and structural information of the reaction product. The main metabolites, including methylation, hydroxylation, hydrolysis, and conjugation reaction products, had been successfully identified through the designed in situ hyphenated technique. Furthermore, compared with metabolites produced by in vitro incubation of rat liver microsomes, it was found that the products of electrochemical simulated metabolism were more abundant with diverse metabolic pathways. The results indicated that the proposed method exhibited advantages in the sample pretreatment process and detection cycle without compromising the reliability and accuracy of the results.
在这项研究中,开发了一种在线电化学耦合高效液相色谱-质谱(EC-HPLC-MS)技术,用于模拟黄酮、槲皮素和芦丁的代谢反应和快速分析代谢物。这些化合物不仅是自然界中具有药理活性的广泛存在的化合物,而且具有结构相似性和可变性。通过使用不同的电化学方法,在玻碳电极(GCE)表面上实现了底物的模拟代谢过程(I 相和 II 相代谢)。在线色谱分离后,产物被传送到质谱仪进行检测,以推测反应产物的相关反应途径和结构信息。通过设计的原位联用技术,成功鉴定了主要代谢物,包括甲基化、羟化、水解和结合反应产物。此外,与大鼠肝微粒体体外孵育产生的代谢物相比,发现电化学模拟代谢产物更丰富,代谢途径更多样化。结果表明,与传统方法相比,该方法在不影响结果可靠性和准确性的前提下,具有样品预处理过程和检测周期的优势。