Wang Miao-Miao, Wang Yu-Qing, Li Shu-Jiao, Zhuang Guo, Yang Yuan-Yuan
School of Pharmacy, Henan University Kaifeng 475004, China Key Laboratory of Traditional Chinese Medicine Effector and Quality Control, Institute of Nanyang Geoherbs (Artemisia argyi), Nanyang Medical College Nanyang 473061, China.
Key Laboratory of Traditional Chinese Medicine Effector and Quality Control, Institute of Nanyang Geoherbs (Artemisia argyi), Nanyang Medical College Nanyang 473061, China.
Zhongguo Zhong Yao Za Zhi. 2024 May;49(9):2468-2477. doi: 10.19540/j.cnki.cjcmm.20240106.201.
In order to characterize and identify the chemical components in different parts of Artemisia argyi(roots, stems, leaves, and seeds), compounds with antioxidant activity were screened. In this study, ultra-performance liquid chromatography-2,2'-azino-bis(3-ethylbenzothiazoline-6-sulfonic acid) diammonium salt-quadrupole time-of-flight-tandem mass spectrometry(UPLC-ABTS-Q-TOF-MS) was used as an online combination technique. Poroshell 120 SB-Aq(3.0 mm×150 mm, 2.7 μm) was used as the column, and acetonitrile(A)-0.2% formic acid water(B) was adopted as the mobile phase to perform gradient elution and was scanned in positive and negative ion modes. MassLynx software was utilized, and combined with reference substances and related literature, the chemical components of different parts of A. argyi were identified and compared. The antioxidant active components were detected by using the online detection system, and the antioxidant activities of active components of different parts of A. argyi were compared and evaluated by scavenging efficiency. As a result, a total of 87 compounds were identified from extracts of different parts of A. argyi, and 38, 72, 85, and 33 components were identified from roots, stems, leaves, and seeds. 22 compounds with antioxidant activity were screened, and 14, 17, 20, and 11 compounds with antioxidant activity were identified from roots, stems, leaves, and seeds. The results show that there are certain differences in chemical components and antioxidant components of different parts of A. argyi, which provides data support for the resource utilization and further research and development of A. argyi.
为了表征和鉴定艾叶不同部位(根、茎、叶和种子)中的化学成分,筛选了具有抗氧化活性的化合物。本研究采用超高效液相色谱-2,2'-联氮-双(3-乙基苯并噻唑啉-6-磺酸)二铵盐-四极杆飞行时间串联质谱(UPLC-ABTS-Q-TOF-MS)作为在线联用技术。采用Poroshell 120 SB-Aq(3.0 mm×150 mm,2.7 μm)色谱柱,以乙腈(A)-0.2%甲酸水(B)为流动相进行梯度洗脱,并在正离子和负离子模式下进行扫描。利用MassLynx软件,结合对照品和相关文献,对艾叶不同部位的化学成分进行了鉴定和比较。通过在线检测系统检测抗氧化活性成分,并通过清除效率比较和评价艾叶不同部位活性成分的抗氧化活性。结果表明,从艾叶不同部位的提取物中总共鉴定出87种化合物,从根、茎、叶和种子中分别鉴定出38、72、85和33种成分。筛选出22种具有抗氧化活性的化合物,从根、茎、叶和种子中分别鉴定出14、17、20和11种具有抗氧化活性的化合物。结果表明,艾叶不同部位的化学成分和抗氧化成分存在一定差异,为艾叶的资源利用及进一步研发提供了数据支持。