Volume 10 Issue 6
Dec.  2020
Turn off MathJax
Article Contents
Ting Liu, Ruiyun Li, Yue Cui, Zhiguo Yu, Yunli Zhao. Metabonomic analysis of plasma biochemical changes in pyrexia rats after treatment with Gegenqinlian decoction, aspirin and itraconazole by UHPLC-FT-ICR-MS[J]. Journal of Pharmaceutical Analysis, 2020, 10(6): 581-587. doi: 10.1016/j.jpha.2019.11.007
Citation: Ting Liu, Ruiyun Li, Yue Cui, Zhiguo Yu, Yunli Zhao. Metabonomic analysis of plasma biochemical changes in pyrexia rats after treatment with Gegenqinlian decoction, aspirin and itraconazole by UHPLC-FT-ICR-MS[J]. Journal of Pharmaceutical Analysis, 2020, 10(6): 581-587. doi: 10.1016/j.jpha.2019.11.007

Metabonomic analysis of plasma biochemical changes in pyrexia rats after treatment with Gegenqinlian decoction, aspirin and itraconazole by UHPLC-FT-ICR-MS

doi: 10.1016/j.jpha.2019.11.007
Funds:

Funding: This work was supported by the Natural Science Foundation of China (NO. 81573629).

  • Received Date: Jul. 15, 2019
  • Accepted Date: Nov. 26, 2019
  • Rev Recd Date: Nov. 19, 2019
  • Available Online: Jan. 24, 2022
  • Publish Date: Dec. 10, 2020
  • A metabonomic approach involving an ultrahigh-performance liquid chromatography combined with Fourier transform ion cyclotron resonance mass spectrometry (UHPLC-FT-ICR-MS) was used to investigate the changes in the endogenous metabolites in the plasma of rats with yeast-induced pyrexia treated with Gegenqinlian decoction (GQLD), aspirin and itraconazole. The differences in the small molecule profiles of treatment using traditional Chinese medicine, etiological treatment and symptomatic treatment were elucidated. Thirty-six plasma metabolites were identified or putatively identified, and the effects of the three medicines on the thirty-six metabolites were studied. Their metabolic pathways indicated that GQLD, aspirin and itraconazole ameliorated the rats with yeast-induced pyrexia predominantly by regulating the metabolisms of phospholipid, sphingolipid, fatty acid oxidation, fatty acid amides, amino acid and glycerolipid in vivo. The pharmacodynamics and metabonomic results showed that the three medicines exhibited the therapeutic effects on pyrexia by regulating the perturbations of multiple metabolisms. The study provided a scientific basis for an in-depth understanding of the therapeutic effects of GQLD, aspirin and itraconazole on rats with yeast-induced pyrexia.
  • loading
  • H. Ye, L.N. Zhu, J.D Feng, et al., Effect of eugenol on arginine vasopressin content in plasma and cerebrospinal fluid of rats with yeast-induced fever, J. China Medi. Univ. 35 (2006) 260-264
    T. Liu, S.H. Li, X.M. Tian, et al., A plasma metabonomic analysis on potential biomarker in pyrexia induced by three methods using ultra high performance liquid chromatography coupled with Fourier transform ion cyclotron resonance mass spectrometry, J. Chromatogr. B 1063 (2017) 214-225
    L.Z. Yu, J.Y. Wu, J.B. Lou, et al., Experimental study on anti-pyretic effect of Gegen Qin Lian decoction and its compounds, China J. Chin. Mater. 29 (2004) 663-666
    Y. Mao, G.J. Zhang, H. Peng, et al., Pharmacodynamics study on antipyretic and anti-inflammatory effects of active Compositions alignment in Gengen Qinlian Decoction, J. Liaoning Univ. Tradit. Chin. Med. 1 (2004) 30-32
    C.H. Zhang, G.L. Xu, Y.H. Liu, et al., Anti-diabetic activities of Gegen Qinlian Decoction in high-fat diet combined with streptozotocin-induced diabetic rats and in 3T3-L1 adipocytes, Phytomedicine 20 (2013) 221-229
    L.H. Chen, J.N. Liu, Q. Wang, et al., Fingerprint comparison between GegenQinlian preparation of three different pharmaceutical forms including decoction, dispensing granule and pill, Chromatographia 69 (2009) 123-127
    X.Z. Yu, W.F. Yang, H.G. Liu, et al., Antilipemic effect of Gengenqinlian Decoction in hyperlipidemia rats, Asia-Pacific Trad. Med. 11 (2012) 12-14
    K. Shinmura, E. Kodani, Y.T. Xuan, et al., Effect of aspirin on late preconditioning against myocardial stunning in conscious rabbits, J Am Coll Cardiol. (2003) 1183-1194
    R.J. Hay, B. Dupont, J.R. Graybill, First International Symposium on Itraconazole: A Summary, Rev. Infect. Dis. 9 (1987) S1-S3
    M.S. Saag, W.E. Dismukes, Azole antifungal agents: emphasis on new triazoles, Antimicrob. Agents Chemother. 32 (1988) 1-8
    T. Liu, Y. Cui, X.M. Tian, et al., Detection of chemical constituents in Gegenqinlian decoction by ultra-high performance liquid chromatography coupled with Fourier transform ion cyclotron resonance mass spectrometry, Anal. Methods 9 (2017) 5890-5902
    National Pharmacopoeia Commission. Pharmacopoeia of the people’s Republic of China 2015 Edition (Two) [M]. Beijing: China Medical Science and Technology Press, 2015
    S. Bijlsma, I. Bobeldijk, E.R. Verheij, et al., Large-scale human metabolomics studies: a strategy for data (pre-) processing and validation, Anal. Chem. 78 (2006) 567-574
    Z.B. Guan, J. Wu, C.C. Wang, et al., Investigation of the preventive effect of Sijunzi decoction on mitomycin Cinduced immunotoxicity in rats by 1H NMR and MS-based untargeted metabolomic analysis, J. Ethnopharmacol. 210 (2018) 179-191
    S. Koizumi, S. Yamamoto, T. Hayasaka, et al., Imaging mass spectrometry revealed the production of lyso-phosphatidylcholine in the injured ischemic rat brain, Neuroscience 168 (2010) 219-225
    N.A. Bourbon, L. Sandirasegarane, M. Kester, Ceramide-induced inhibition of Akt ismediated through protein kinase Czeta: implications for growth arrest, J Biol. Chem. 277 (2002) 3286-3292
    M.T. Park, J.A. Kang, J.A. Choi, et al., Phytosphingosine induces apoptotic cell death via caspase 8 activation and Bax translocation in human cancer cells, Clin. Cancer Res. 9 (2003) 878-885
    M. Maceyka, S. Spiegel, Sphingolipid metabolites in inflammatory disease, Nature 510 (2014) 58-67
    K.A. Becker, J. Riethmuller, Y. Zhang, et al., The role of sphingolipids and ceramide in pulmonary inflammation in cystic fibrosis, Open Respir. Med. J. 4 (2010) 39-47
    G.F. Nixon. Sphingolipids in inflammation: pathological implications and potential therapeutic targets, Br. J. Pharmacol. 158(2009) 982-993
    A.D. McNaught, A. Wilkinson, IUPAC, Compendium of Chemical Terminology, 2nd ed (the “Gold Book”), Blackwell Scientific Publications, Oxford, 1997
    M. Handel, T. Horstmann, H.H. Dickhuth, et al., Effects of contractrelax stretching training on muscle performance in athletes, Eur. J Appl. Physiol. Occup. Physiol. 76 (1997) 400-408
    C.D.R.M. D’Oca, T. Coelho, T.G. Marinho, et al., Synthesis and antituberculosis activity of new fatty acid amides, Bioorg. Med. Chem. Lett. 20 (2010) 5255-5257
    W.J. Driscoll, S. Chaturvedi, G.P. Mueller, Oleamide synthesizing activity from rat kidney: Identification as cytochrome c, J. Biol. Chem. 2007, 282 (2007) 22353-22363
    M.X. Guo, H. Gu, Y.L. Song, et al., Characterization of rational biomarkers accompanying fever in yeast-induced pyrexia rats using urine metabolic footprint analysis, J. Pharm. Biomed. Anal. 95 (2014) 68-75
    J.D. McGarry, N.F. Brown, The mitochondrial carnitine palmitoyltransferase system. From concept to molecular analysis, Eur. J. Biochem. 244 (1997) 1-14
    V. Moreira, E. Brasili, J. Fiamoncini, et al., Orange juice affects acylcarnitine metabolism in healthy volunteers as revealed by a mass-spectrometry based metabolomics approach, Food Res. Int. 107 (2018) 346-352
  • 加载中

Catalog

    通讯作者: 陈斌, bchen63@163.com
    • 1. 

      沈阳化工大学材料科学与工程学院 沈阳 110142

    1. 本站搜索
    2. 百度学术搜索
    3. 万方数据库搜索
    4. CNKI搜索

    Article Metrics

    Article views (151) PDF downloads(5) Cited by()
    Proportional views
    Related

    /

    DownLoad:  Full-Size Img  PowerPoint
    Return
    Return