Integrated UPLC-Q-TOF-MS/MS and Network Pharmacology Approach to Investigating the Metabolic Profile of Marein of Coreopsis tinctoria Nutt.

被引:1
作者
Liu, Jing [1 ]
Cheng, Xuejing [1 ]
Zheng, Xin [2 ]
Shi, Yumeng [1 ]
Li, Chunxia [1 ]
He, Qiaoyu [1 ]
Li, Yue [1 ]
Chen, Xiaopeng [1 ]
机构
[1] Tianjin Univ Tradit Chinese Med, Inst Tradit Chinese Med, State Key Lab Component Based Chinese Med, Tianjin 301617, Peoples R China
[2] SSL Shimadzu China Co LTD, Beijing Analyt Ctr, Beijing 100020, Peoples R China
基金
中国国家自然科学基金;
关键词
DRUG TARGET IDENTIFICATION; ANTIOXIDANT ACTIVITIES; GLUCOSE-TOLERANCE; WEB SERVER; FLAVANOMAREIN; FLAVONOIDS; EXTRACTS; RECOVERY; RATS;
D O I
10.1155/2022/6707811
中图分类号
R [医药、卫生];
学科分类号
10 ;
摘要
Marein is the main active compound of Coreopsis tinctoria Nutt., and its main activities include antioxidant, hypoglycemic, and hypotensive. After oral administration of marein, the blood concentration of marein is low. The metabolites of marein have not been reported systematically. In this study, a rapid and systematic method based on ultra-high performance liquid chromatography-quadrupole time-of-flight mass spectrometry (UPLC-Q-TOF-MS/MS) was established to detect metabolites of marein in vivo (plasma and urine) after oral administration and injection. Sixty-one metabolites were identified. The metabolites are formed through a wide range of metabolic reactions, including hydroxylation, glucuronidation, methylation, hydrolysis, and desorption of hydrogen. The liver microsome incubation was further used to investigate the metabolic rate of marein. Network pharmacology was applied to study the targets and pathways of marein and its metabolites. Marein and its metabolites act on the same targets to enhance the therapeutic effect. This research illuminates the metabolites and metabolic reaction of marein and establishes a basis for the development and rational utilization of C. tinctoria. Meanwhile, the analysis of prototype and metabolites together by network pharmacology techniques could provide a methodology for the study of component activity.
引用
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页数:15
相关论文
共 38 条
[1]   UniProt: the universal protein knowledgebase in 2021 [J].
Bateman, Alex ;
Martin, Maria-Jesus ;
Orchard, Sandra ;
Magrane, Michele ;
Agivetova, Rahat ;
Ahmad, Shadab ;
Alpi, Emanuele ;
Bowler-Barnett, Emily H. ;
Britto, Ramona ;
Bursteinas, Borisas ;
Bye-A-Jee, Hema ;
Coetzee, Ray ;
Cukura, Austra ;
Da Silva, Alan ;
Denny, Paul ;
Dogan, Tunca ;
Ebenezer, ThankGod ;
Fan, Jun ;
Castro, Leyla Garcia ;
Garmiri, Penelope ;
Georghiou, George ;
Gonzales, Leonardo ;
Hatton-Ellis, Emma ;
Hussein, Abdulrahman ;
Ignatchenko, Alexandr ;
Insana, Giuseppe ;
Ishtiaq, Rizwan ;
Jokinen, Petteri ;
Joshi, Vishal ;
Jyothi, Dushyanth ;
Lock, Antonia ;
Lopez, Rodrigo ;
Luciani, Aurelien ;
Luo, Jie ;
Lussi, Yvonne ;
Mac-Dougall, Alistair ;
Madeira, Fabio ;
Mahmoudy, Mahdi ;
Menchi, Manuela ;
Mishra, Alok ;
Moulang, Katie ;
Nightingale, Andrew ;
Oliveira, Carla Susana ;
Pundir, Sangya ;
Qi, Guoying ;
Raj, Shriya ;
Rice, Daniel ;
Lopez, Milagros Rodriguez ;
Saidi, Rabie ;
Sampson, Joseph .
NUCLEIC ACIDS RESEARCH, 2021, 49 (D1) :D480-D489
[2]   The chemical components ofCoreopsis tinctoriaNutt. and their antioxidant, antidiabetic and antibacterial activities [J].
Begmatov, Nurmirza ;
Li, Jun ;
Bobakulov, Khayrulla ;
Numonov, Sodik ;
Aisa, Haji Akber .
NATURAL PRODUCT RESEARCH, 2020, 34 (12) :1772-1776
[3]   Comparison of antioxidant activities of different parts from snow chrysanthemum (Coreopsis tinctoria Nutt.) and identification of their natural antioxidants using high performance liquid chromatography coupled with diode array detection and mass spectrometry and 2,2′-azinobis(3-ethylbenzthiazoline-sulfonic acid)diammonium salt-based assay [J].
Chen, L. X. ;
Hu, D. J. ;
Lam, S. C. ;
Ge, L. ;
Wu, D. ;
Zhao, J. ;
Long, Z. R. ;
Yang, W. J. ;
Fan, B. ;
Li, S. P. .
JOURNAL OF CHROMATOGRAPHY A, 2016, 1428 :134-142
[4]   Quantitative analysis of flavonoids and phenolic acid in Coreopsis tinctoria Nutt. by capillary zone electrophoresis [J].
Deng, Yong ;
Lam, Shing-Chung ;
Zhao, Jing ;
Li, Shao-Ping .
ELECTROPHORESIS, 2017, 38 (20) :2654-2661
[5]   Cytoprotective effect of Coreopsis tinctoria extracts and flavonoids on tBHP and cytokine-induced cell injury in pancreatic MIN6 cells [J].
Dias, Teresa ;
Liu, Bo ;
Jones, Peter ;
Houghton, Peter J. ;
Mota-Filipe, Helder ;
Paulo, Alexandra .
JOURNAL OF ETHNOPHARMACOLOGY, 2012, 139 (02) :485-492
[6]   The flavonoid-rich fraction of Coreopsis tinctoria promotes glucose tolerance regain through pancreatic function recovery in streptozotocin-induced glucose-intolerant rats [J].
Dias, Teresa ;
Bronze, Maria Rosario ;
Houghton, Peter J. ;
Mota-Filipe, Helder ;
Paulo, Alexandra .
JOURNAL OF ETHNOPHARMACOLOGY, 2010, 132 (02) :483-490
[7]   Recovery of Oral Glucose Tolerance by Wistar Rats after Treatment with Coreopsis tinctoria Infusion [J].
Dias, Teresa ;
Mota-Filipe, Helder ;
Liu, Bo ;
Jones, Peter ;
Houghton, Peter J. ;
Paulo, Alexandra .
PHYTOTHERAPY RESEARCH, 2010, 24 (05) :699-705
[8]   In Vivo Anti-inflammatory and Antiallergic Activity of Pure Naringenin, Naringenin Chalcone, and Quercetin in Mice [J].
Escribano-Ferrer, Elvira ;
Queralt Regue, Josep ;
Garcia-Sala, Xavier ;
Boix Montanes, Antoni ;
Lamuela-Raventos, Rosa M. .
JOURNAL OF NATURAL PRODUCTS, 2019, 82 (02) :177-182
[9]   Metabolic and biological prospecting of Coreopsis tinctoria [J].
Gaspar, Luis ;
Oliveira, Andreia P. ;
Silva, Luis R. ;
Andrade, Paula B. ;
de Pinho, Paula Guedes ;
Botelho, Joao ;
Valentao, Patricia .
REVISTA BRASILEIRA DE FARMACOGNOSIA-BRAZILIAN JOURNAL OF PHARMACOGNOSY, 2012, 22 (02) :350-358
[10]  
Guo YL, 2020, BIOMED PHARMACOTHER, V131, DOI [10.1016/j.biopha.2020.110684, 10.1016/J.biopha.2020.110684]