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Spectrum-effect relationship between GC-QTOF-MS fingerprint and antioxidant, anti-inflammatory activities of Schizonepeta tenuifolia essential oil.

Bai, X ; Liu, L ; et al.
In: Biomedical chromatography : BMC, Jg. 35 (2021-07-01), Heft 7, S. e5106
academicJournal

Titel:
Spectrum-effect relationship between GC-QTOF-MS fingerprint and antioxidant, anti-inflammatory activities of Schizonepeta tenuifolia essential oil.
Autor/in / Beteiligte Person: Bai, X ; Liu, L ; Zhang, J ; Chen, L ; Wu, T ; Aisa, HA ; Maiwulanjiang, M
Zeitschrift: Biomedical chromatography : BMC, Jg. 35 (2021-07-01), Heft 7, S. e5106
Veröffentlichung: 1990- : Chichester : Wiley ; <i>Original Publication</i>: London : Heyden & Son, c1986-1990, 2021
Medientyp: academicJournal
ISSN: 1099-0801 (electronic)
DOI: 10.1002/bmc.5106
Schlagwort:
  • Animals
  • Cell Survival drug effects
  • Drugs, Chinese Herbal chemistry
  • Drugs, Chinese Herbal toxicity
  • Mice
  • RAW 264.7 Cells
  • Anti-Inflammatory Agents analysis
  • Anti-Inflammatory Agents pharmacology
  • Antioxidants analysis
  • Antioxidants pharmacology
  • Gas Chromatography-Mass Spectrometry methods
  • Lamiaceae chemistry
  • Oils, Volatile analysis
  • Oils, Volatile pharmacology
Sonstiges:
  • Nachgewiesen in: MEDLINE
  • Sprachen: English
  • Publication Type: Journal Article
  • Language: English
  • [Biomed Chromatogr] 2021 Jul; Vol. 35 (7), pp. e5106. <i>Date of Electronic Publication: </i>2021 Mar 12.
  • MeSH Terms: Anti-Inflammatory Agents* / analysis ; Anti-Inflammatory Agents* / pharmacology ; Antioxidants* / analysis ; Antioxidants* / pharmacology ; Oils, Volatile* / analysis ; Oils, Volatile* / pharmacology ; Gas Chromatography-Mass Spectrometry / *methods ; Lamiaceae / *chemistry ; Animals ; Cell Survival / drug effects ; Drugs, Chinese Herbal / chemistry ; Drugs, Chinese Herbal / toxicity ; Mice ; RAW 264.7 Cells
  • References: Adams, R. P. (2007). Identification of essential oils components by gas chromatography/mass spectrometry (fourth ed.). USA: Allured Publishing Corporation, CarolS tream, IL. ; Bahuguna, A., Ramalingam, S., Arumugam, A., Natarajan, D., & Kim, M. (2020). Molecular and in silico evidences explain the anti-inflammatory effect of Trachyspermum ammi essential oil in lipopolysaccharide induced macrophages. Process Biochemistry, 96, 138-145. https://doi.org/10.1016/j.procbio.2020.06.006. ; Chen, S.-G., Cheng, M.-L., Chen, K.-H., Horng, J.-T., Liu, C.-C., Wang, S.-M., Sakurai, H., Leu, Y. L., Wang, S. D., & Ho, H.-Y. (2017). Antiviral activities of Schizonepeta tenuifolia Briq. Against enterovirus 71 in vitro and in vivo. Scientific Reports, 7(1), 935. https://doi.org/10.1038/s41598-017-01110-x. ; Chun, M.-H., Kim, E. K., Yu, S. M., Oh, M. S., Moon, K.-Y., Jung, J. H., & Hong, J. (2011). GC/MS combined with chemometrics methods for quality control of Schizonepeta tenuifolia Briq: Determination of essential oils. Microchemical Journal, 97(2), 274-281. https://doi.org/10.1016/j.microc.2010.09.015. ; Committee, N. P. (2015). Pharmacopoeia of People's Republic of China. Part 1. Beijing: Chemical Industry Press. ; do Vale, J. P., de Freitas Ribeiro, L. H., de Vasconcelos, M. A., Sa-Firmino, N. C., Pereira, A. L., do Nascimento, M. F., Rodrigues, T. H., da Silva, P. T., de Sousa, K. C., da Silva, R. B., & do Nascimento Neto, L. G. (2019). Chemical composition, antioxidant, antimicrobial and antibiofilm activities of Vitex gardneriana schauer leaves's essential oil. Microbial Pathogenesis, 135, 103608. https://doi.org/10.1016/j.micpath.2019.103608. ; Guo, S., Yu, S., Qian, Y., Hu, M., Shan, M., Chen, P., Chen, Y., Zhang, L., Ding, A., Wu, Q., & Li, S. F. Y. (2017). Correlation of antioxidant activity and volatile oil chemical components from Schizonepeta tenuifolia herbs by chemometric methods. International Journal of Food Properties, 20(sup1), S1082-S1092. https://doi.org/10.1080/10942912.2017.1328438. ; Hsieh, Y. H., Kuo, P. M., Chien, S. C., Shyur, L. F., & Wang, S. Y. (2007). Effects of Chamaecyparis formosensis Matasumura extractives on lipopolysaccharide-induced release of nitric oxide. Phytomedicine, 14(10), 675-680. https://doi.org/10.1016/j.phymed.2006.11.029. ; Hu, H.-J., Zhou, Y., Han, Z.-Z., Shi, Y.-H., Zhang, S.-S., Wang, Z.-T., & Yang, L. (2018). Abietane Diterpenoids from the roots of Clerodendrum trichotomum and their nitric oxide inhibitory activities. Journal of Natural Products, 81(7), 1508-1516. https://doi.org/10.1021/acs.jnatprod.7b00814. ; Lee, Y. H., Wang, C. M., Liu, P. Y., Cheng, C. C., Wu, Z. Y., Tseng, S. Y., & Tung, K. C. (2018). Volatile oils of Nepeta tenuifolia (Jing Jie) as an alternative medicine against multidrug-resistant pathogenic microbes. Canadian Journal of Infectious Diseases and Medical Microbiology, 2018, 8347403. https://doi.org/10.1155/2018/8347403. ; Lin, Y. H., Chen, H. Y., Chiu, J. C., Chen, K. J., Ho, H. Y., & Yang, S. H. (2018). Immunomodulation effects of schizonepeta tenuifolia briq. On the IgE-induced allergic model of RBL-2H3 cells. Evidence-Based Complementary and Alternative Medicine, 2018, 1-7. https://doi.org/10.1155/2018/6514705. ; Liu, C., Srividya, N., Parrish, A. N., Yue, W., Shan, M., Wu, Q., & Lange, B. M. (2018). Morphology of glandular trichomes of Japanese catnip (Schizonepeta tenuifolia Briquet) and developmental dynamics of their secretory activity. Phytochemistry, 150, 23-30. https://doi.org/10.1016/j.phytochem.2018.02.018. ; Nazem, V., Sabzalian, M. R., Saeidi, G., & Rahimmalek, M. (2019). Essential oil yield and composition and secondary metabolites in self- and open-pollinated populations of mint (Mentha spp.). Industrial Crops and Products, 130, 332-340. https://doi.org/10.1016/j.indcrop.2018.12.018. ; Ng, Y. C., Kim, Y. W., Lee, J. S., Lee, S. J., & Jung Song, M. (2018). Antiviral activity of Schizonepeta tenuifolia Briquet against noroviruses via induction of antiviral interferons. Journal of Microbiology, 56(9), 683-689. https://doi.org/10.1007/s12275-018-8228-7. ; Peng, A., Lin, L., & Zhao, M. (2020). Screening of key flavonoids and monoterpenoids for xanthine oxidase inhibitory activity-oriented quality control of Chrysanthemum morifolium Ramat. ‘Boju’ based on spectrum-effect relationship coupled with UPLC-TOF-MS and HS-SPME-GC/MS. Food Research International, 137, 109448, 1-12. https://doi.org/10.1016/j.foodres.2020.109448. ; Shan, M. Q., Qian, Y., Yu, S., Guo, S. C., Zhang, L., Ding, A. W., & Wu, Q. N. (2016). Anti-inflammatory effect of volatile oil from Schizonepeta tenuifolia on carrageenin-induced pleurisy in rats and its application to study of appropriate harvesting time coupled with multi-attribute comprehensive index method. Journal of Ethnopharmacology, 194, 580-586. https://doi.org/10.1016/j.jep.2016.10.045. ; Song, S., Yao, W. F., Cui, X.b., Liu, X., & Qiu, R. L. (2018). Spectrum-effect relationship analysis by binary chromatographic fingerprint to identify components responsible for the antibacterial activity of the essential oil from Curcumae wenyujin. International Journal of Food Properties, 21(1), 546-556. https://doi.org/10.1080/10942912.2018.1453836. ; Wang, B. S., Huang, G. J., Tai, H.-M., & Huang, M.-H. (2012). Antioxidant and anti-inflammatory activities of aqueous extracts of Schizonepeta tenuifolia Briq. Food and Chemical Toxicology, 50(3), 526-531. https://doi.org/10.1016/j.fct.2011.12.010. ; Xiao, R. Y., Wu, L. J., Hong, X. X., Tao, L., Luo, P., & Shen, X. C. (2018). Screening of analgesic and anti-inflammatory active component in Fructus Alpiniae zerumbet based on spectrum-effect relationship and GC-MS. Biomedical Chromatography, 32(3), e4112. https://doi.org/10.1002/bmc.4112. ; Yang, J. Y., & Lee, H. S. (2013). Changes in Acaricidal potency by introducing functional radicals and an Acaricidal constituent isolated from Schizonepeta tenuifolia. Journal of Agricultural and Food Chemistry, 61(47), 11511-11516. https://doi.org/10.1021/jf404586k. ; Zhang, D., Ruan, D., Li, J., Chen, Z., Zhu, W., Guo, F., Chen, K., Li, Y., & Wang, R. (2020). Four undescribed sulfur-containing indole alkaloids with nitric oxide inhibitory activities from Isatis tinctoria L. roots. Phytochemistry, 174, 112337. https://doi.org/10.1016/j.phytochem.2020.112337.
  • Grant Information: Youth Innovation Promotion Association; n/a Recruitment Program of Global Experts; 2020-JCTD-001; 2018-XBQNXZ-BB-001 West Light Foundation of the Chinese Academy of Sciences; 2020-JCTD-001 West Light Foundation of the Chinese Academy of Sciences
  • Contributed Indexing: Keywords: Schizonepeta tenuifolia (Benth.) Briq; anti-inflammatory; antioxidant; essential oil; fingerprint; spectrum-effect relationship
  • Substance Nomenclature: 0 (Anti-Inflammatory Agents) ; 0 (Antioxidants) ; 0 (Drugs, Chinese Herbal) ; 0 (Oils, Volatile)
  • Entry Date(s): Date Created: 20210227 Date Completed: 20210705 Latest Revision: 20210705
  • Update Code: 20240513

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