Network pharmacology and molecular docking combined with widely targeted metabolomics to elucidate the potential compounds and targets of Euphorbia helioscopia seeds for the treatment of pulmonary fibrosis
Tài liệu tham khảo
Velagacherla, 2022, Molecular pathways and role of epigenetics in the idiopathic pulmonary fibrosis, Life Sci., 291, 10.1016/j.lfs.2021.120283
Liu, 2022, Anti-pulmonary fibrosis activities of triterpenoids from Oenothera biennis, Molecules, 27, 4870, 10.3390/molecules27154870
Liu, 2016, Unsaturated fatty acid of Actinidia chineses Planch seed oil enhances the antioxidative stress ability of rats with pulmonary fibrosis through activating Keap 1/Nrf 2 signaling pathway, Chin. J. cell. molec. Immun., 32, 479
Bahri, 2021, Industrial elimination of essential oils from rosmarinus officinalis: in support of the synergic antifibrotic effect of rosmarinic and carnosic acids in bleomycin model of lung fibrosis, Nutr. Cancer, 73, 2376, 10.1080/01635581.2020.1826991
Wang, 2020, Galangin ameliorated pulmonary fibrosis in vivo and in vitro by regulating epithelial-mesenchymal transition, Bioorg. Med. Chem., 28, 10.1016/j.bmc.2020.115663
Vasas, 2014, Euphorbia diterpenes: isolation, structure, biological activity, and synthesis (2008–2012), Chem. Rev., 114, 8579, 10.1021/cr400541j
Jan, 2022, Anti-inflammatory potential of Euphorbia helioscopia extracts against RAW264. 7 macrophages, Pharmacogn. Res., 14, 10.5530/pres.14.3.50
Shi, 2008, Chemical and pharmacological research of the plants in genus Euphorbia, Chem. Rev., 108, 4295, 10.1021/cr078350s
Liu, 2022, Untargeted metabolomic analysis of nonvolatile and volatile glucosinolates in brassicaceae, Meth.mole.r bio., 2469, 219, 10.1007/978-1-0716-2185-1_18
Crescenzi, 2022, UPLC-ESI-QTRAP-MS/MS analysis to quantify bioactive compounds in fennel (foeniculum vulgare mill.) waste with potential anti-inflammatory activity, Metabolites, 12, 701, 10.3390/metabo12080701
Yang, 2022, UPLC-ESI-MS/MS-based widely targeted metabolomics analysis of wood metabolites in teak (Tectona grandis), Molecules, 25, 2189, 10.3390/molecules25092189
Rochfort, 2005, Metabolomics reviewed: a new "omics" platform technology for systems biology and implications for natural products research, J. Nat. Prod., 68, 1813, 10.1021/np050255w
Da, 2015, Network pharmacology: a rosetta stone for traditional Chinese medicine, Drug Dev. Res., 75, 299
Noor, 2022, Integrating network pharmacology and molecular docking approaches to decipher the multi-target pharmacological mechanism of Abrus precatorius L. Acting on diabetes, Pharmaceuticals-base, 15, 414, 10.3390/ph15040414
Du, 2022, The potential bioactive components of nine TCM prescriptions against COVID-19 in lung cancer were explored based on network pharmacology and molecular docking, Front. Med., 8, 10.3389/fmed.2021.813119
Jiao, 2022, Integrated network pharmacology and cellular assay for the investigation of an anti-obesity effect of 6-shogaol, Food Chem., 374, 10.1016/j.foodchem.2021.131755
Yuan, 2021, Network pharmacology and molecular docking reveal the mechanism of Scopoletin against non-small cell lung cancer, Life Sci., 270, 10.1016/j.lfs.2021.119105
Ward, 2014
Wang, 2022, Gossypol broadly inhibits coronaviruses by targeting RNA-dependent RNA polymerases, Adv. Sci., 10.1002/advs.202270222
Hao, 2022, β-Carboline alkaloids from the deep-sea fungus Trichoderma sp. MCCC 3A01244 as a new type of anti-pulmonary fibrosis agent that inhibits TGF-β/smad signaling pathway, Front. Microbiol., 13, 10.3389/fmicb.2022.947226
Romero, 2018, Lipid synthesis is required to resolve endoplasmic reticulum stress and limit fibrotic responses in the lung, Am. J. Respir. Cell Mol. Biol., 59, 225, 10.1165/rcmb.2017-0340OC
Vanitha Sree, 2022, Therapeutic efficacy of galangin and piperine individually and in combination with the bleomycin on body weights and hematology alterations in c57bl/6 mice, The Pharma. Innov. J. SP-, 11, 3253
Spagnolo, 2017, Genetics of idiopathic pulmonary fibrosis: from mechanistic pathways to personalised medicine, J. Med. Genet., 54, 93, 10.1136/jmedgenet-2016-103973
Epstein Shochet, 2019, Epidermal growth factor receptor paracrine upregulation in idiopathic pulmonary fibrosis fibroblasts is blocked by nintedanib, Am. J. Physiol-lung C., 316, L1025, 10.1152/ajplung.00526.2018
Hu, 2014, Therapeutic targeting of SRC kinase in myofibroblast differentiation and pulmonary fibrosis, J. Pharmacol. Exp. Therapeut., 351, 87, 10.1124/jpet.114.216044
Nie, 2019, Akt1 regulates pulmonary fibrosis via modulating IL-13 expression in macrophages, Innate. Immunol. Lond., 25, 451, 10.1177/1753425919861774
Rubio, 2019, Inactivation of nuclear histone deacetylases by EP300 disrupts the MiCEE complex in idiopathic pulmonary fibrosis, Nat. Commun., 10, 1, 10.1038/s41467-019-10066-7
Chung, 2001, Induction of c-jun and TGF-β1 in Fischer 344 rats during amiodarone-induced pulmonary fibrosis, Am. J. Physiol-lung C., 281, L1180, 10.1152/ajplung.2001.281.5.L1180
Alcorn, 2009, c-Jun N-terminal kinase 1 is required for the development of pulmonary fibrosis, Am. J. Resp. cell Mol., 40, 422, 10.1165/rcmb.2008-0174OC
Sontake, 2017, Hsp 90 regulation of fibroblast activation in pulmonary fibrosis, JCI insight, 2, 10.1172/jci.insight.91454
Yue, 2010, TGF-β: titan of lung fibrogenesis, Curr. Enzym. Inhib., 6, 67, 10.2174/157340810791233033
