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非手性-手性液相色谱-预测性多反应监测法分析中药藁本的化学成分

[Analysis of chemical components of Chinese medicine Ligustici Radix by achiral-chiral liquid chromatography-predictive multiple reaction monitoring].

作者信息

Xu Xia, Li Ting, Jia Jinru, Tang Huiting, Li Jun, Zhao Yunfang, Song Yuelin

机构信息

Modern Research Center for Traditional Chinese Medicine, School of Chinese Materia Medica, Beijing University of Chinese Medicine, Beijing 100029, China.

出版信息

Se Pu. 2021 Jun;39(6):642-651. doi: 10.3724/SP.J.1123.2020.08024.

DOI:10.3724/SP.J.1123.2020.08024
PMID:34227325
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9404100/
Abstract

Ligustici Radix (Chinese name: maoqianhu) consists of the dried roots of Franch., which is mainly distributed in the Yunnan and Sichuan provinces. This herbal medicine has been primarily used for the treatment of cough in traditional Chinese medicine. Ligustici Radix is rich in coumarin derivatives. Interestingly, enantiomers and diastereomers are widely used for these coumarins, thus posing a great challenge for in-depth chemical profile characterization. In the present study, a new analytical platform, achiral-chiral liquid chromatography-tandem mass spectrometry (achiral-chiral LC-MS/MS) was configured to profile the chemical composition of Ligustici Radix. Because achiral and chiral columns were serially coupled, especially enantiomers, both chemically and enantiomerically selective separations could be accomplished simultaneously. The newly configured achiral-chiral LC-MS/MS platform did not require any electronic valve; hence, it could overcome the drawbacks of heart-cutting achiral-chiral two-dimensional LC, i. e., sophisticated instrumentation and limited reproducibility due to the use of electronic valve(s) and the undesired retention time shift across different analytical runs. Some available candidates for chemically selective or enantiomerically selective separation were assayed; then, Capcell core RP-C column that was packed with core-shell type particles, and AD-RH column embedding amylose coated particles were employed the achiral and the chiral columns, respectively. The narrow-bore core-shell RP-C column served as the front tool to achieve efficient chemoselective separation of coumarin analogs, and enantioselective enantiomers were obtained by using a wide-bore AD-RH chiral column. The predictive multiple reaction monitoring (predictive MRM) mode allowed for the sensitive detection of potential components, and an enhanced product ion (EPI) scan, which was a unique function of Qtrap-MS, was programmed to record the MS spectra for all captured signals and thus aid structural annotation. Online energy-resolved mass spectrometry (online ER-MS) was introduced to pursue the suitable collision energy for each compound; in particular, inferior collision energy instead of the optimal one was utilized to suppress the response of the primary components such as praeruptorin A, B and pteryxin. The criteria to judge enantiomers or not included identical quantitative and qualitative precursor-to-product ion transitions, identical quantitative versus qualitative responses, and longer retention times from achiral-chiral LC over single-column achiral LC. As a result, a total of sixty components were observed and structurally identified. In particular, enantiomerically selective separations were achieved for eight enantiomers, -khellactone (CKL), qianhucoumarin G (QC-G), pteryxin (Pte), praeruptorin A (PA), -3'-isovaleryl-4'-acetylkhellactone (IAK), praeruptorin B (PB), praeruptorin E (PE), and -3',4'-diisovalerylkhellactone (DIK). Notably, none of the enantiomers were present as racemates; instead, the proportion of one enantiomer in each pair was greater than the other. Achiral-chiral LC-predictive MRM is a feasible choice for the quantitative and qualitative analyses of Ligustici Radix as well as other herbal medicines characterized by enantiomers and diastereomers.

摘要

羌活(中文名:毛前胡)为羌活干燥根,主要分布于云南和四川省。这种草药在传统中医中主要用于治疗咳嗽。羌活富含香豆素衍生物。有趣的是,对映体和非对映体在这些香豆素中广泛存在,这给深入的化学图谱表征带来了巨大挑战。在本研究中,构建了一种新的分析平台——非手性 - 手性液相色谱 - 串联质谱(achiral-chiral LC-MS/MS)来分析羌活的化学成分。由于非手性柱和手性柱串联连接,特别是对映体,化学选择性和对映体选择性分离可同时完成。新构建的非手性 - 手性LC-MS/MS平台不需要任何电子阀;因此,它可以克服中心切割非手性 - 手性二维液相色谱的缺点,即仪器复杂,且由于使用电子阀导致重现性有限,以及不同分析运行之间存在不必要的保留时间偏移。对一些用于化学选择性或对映体选择性分离的可用候选柱进行了评估;然后,分别使用填充核壳型颗粒的Capcell core RP-C柱和包埋直链淀粉涂覆颗粒的AD-RH柱作为非手性柱和手性柱。窄内径核壳型RP-C柱作为前端工具,实现香豆素类似物的高效化学选择性分离,通过使用宽内径AD-RH手性柱获得对映体选择性对映体。预测性多反应监测(predictive MRM)模式允许灵敏检测潜在成分,并设置增强产物离子(EPI)扫描(这是Qtrap-MS的独特功能)来记录所有捕获信号的质谱图,从而辅助结构注释。引入在线能量分辨质谱(online ER-MS)来为每种化合物寻找合适的碰撞能量;特别是,使用较低的碰撞能量而非最佳碰撞能量来抑制主要成分如前胡素A、B和紫花前胡内酯的响应。判断对映体的标准包括相同的定量和定性前体 - 产物离子转换、相同的定量与定性响应,以及非手性 - 手性LC相对于单柱非手性LC更长的保留时间。结果,共观察并鉴定了60种成分。特别是,实现了8对对映体的对映体选择性分离,即 - 凯林内酯(CKL)、前胡香豆素G(QC-G)、紫花前胡内酯(Pte)、前胡素A(PA)、 - 3'-异戊酰基 - 4'-乙酰基凯林内酯(IAK)、前胡素B(PB)、前胡素E(PE)和 - 3',4'-二异戊酰基凯林内酯(DIK)。值得注意的是,这些对映体均不以外消旋体形式存在;相反,每对对映体中一种对映体的比例大于另一种。非手性 - 手性LC - 预测性MRM是羌活以及其他以对映体和非对映体为特征的草药进行定量和定性分析的可行选择。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/347d/9404100/9de23d72fdcd/cjc-39-06-642-img_5.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/347d/9404100/bd7a19de9c44/cjc-39-06-642-img_1.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/347d/9404100/1934c2b6b693/cjc-39-06-642-img_2.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/347d/9404100/813dd0e0cbe6/cjc-39-06-642-img_3.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/347d/9404100/7f2dbccd86b2/cjc-39-06-642-img_4.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/347d/9404100/9de23d72fdcd/cjc-39-06-642-img_5.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/347d/9404100/bd7a19de9c44/cjc-39-06-642-img_1.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/347d/9404100/1934c2b6b693/cjc-39-06-642-img_2.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/347d/9404100/813dd0e0cbe6/cjc-39-06-642-img_3.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/347d/9404100/7f2dbccd86b2/cjc-39-06-642-img_4.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/347d/9404100/9de23d72fdcd/cjc-39-06-642-img_5.jpg

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