[1] Li, W.; Wang, Z.; Chen, L.; Zhang, J.; Han, L.; Hou, J. Pressurized liquid extraction followed by LC-ESIMS for analysis of four chromones in Radix Saposhnikoviae. J. Sep. Sci. 2010, 33, 2881-2887.
[2] Guo, L.Q.; Taniguchi, M.; Chen, Q.Y.; Baba, K.; Yamazoe, Y. Inhibitory potential of herbal medicines on human cytochrome P450-mediated oxidation: properties of umbelliferous or citrus crude drugs and their relative prescriptions. Jpn. J. Pharmacol. 2001, 85, 399-408.
[3] Chun, J.M.; Kim, H.S.; Lee, A.Y.; Kim, S.H.; Kim, H.K. Anti-Inflammatory and Antiosteoarthritis Effects of Saposhnikovia divaricata ethanol Extract: In Vitro and In Vivo Studies. Evid. Based Complement Alternat. Med. 2016, 1984238.
[4] Li, Y.; Zhao, L.; Zhang, H.; Jia, J.; Lv, L.; Zhou, G. Comparative pharmacokinetics of prim-o-glucosylcimifugin and cimifugin by liquid chromatography-mass spectrometry after oral administration of radix saposhnikoviae extract, cimifugin monomer solution and prim-o-glucosylcimifugin monomer solution to rats. Biomed. chromatogr. 2012, 26, 1234-1240.
[5] Kang, J.; Khan, M.; Park, N. Antipyretic, analgesic, and anti-inflammatory activities of the seaweed Sargassum fulvellum and Sargassum thunbergii in mice. J. Ethnopharmacol. 2008, 116, 187-190.
[6] Kim, M.K.; Yang, D.H.; Jung, M.; Jung, E.H.; Eom, H.Y.; Suh, J.H. Simultaneous determination of chromones and coumarins in radix saposhnikoviae by high performance liquid chromatography with diode array and tandem mass detectors. J. Chromatogr. A. 2011, 1218, 6319-6330.
[7] Okuyama, E.; Hasegawa, T.; Matsushita, T.; Fujimoto, H.; Ishibashi, M.; Yamazaki, M. Analgesic components of saposhnikovia root (saposhnikovia divaricata). Chem. Pharma. Bull. 2001, 49, 154-160.
[8] Zeng, L.J.; Sun, Q.S.; Jia, L.Y. Content determination of four components from different habitats and different parts of Saposhnikovia divaricata (Turca.) Schischk by PR-HLC. J. Shenyang Pharma. Univ. 2009, 26, 127-130.
[9] Liu, S.L.; Zhang, C.H.; Zhang, L.X. A comparative study of 4 chromone constituent in different habitats. Chin. Tradit. Herb. Drugs. 2007, 38, 776-778.
[10] Xiao, X.H.; Chen, S.L.; Huang, L.Q.; Xiao, P.G. Survey of investigation on Daodi Chinese medicinal materials in China since 1980s. Chin. Pharm. J. 2009, 34, 519-523.
[11] Okuyama, E.; Hasegawa, T.; Matsushita, T.; Fujimoto, H.; Ishibashi, M.; Yamazaki, M. Analgesic components of saposhnikovia root (Saposhnikovia divaricata). Chem. Pharm. Bull (Tokyo). 2001, 49, 154-160.
[12] Zhao, B.; Yang, X.; Yang, X.; Zhang, L. Chemical constituents of roots of Saposhnikovia divaricata. J. Chin. Mater. Med. 2010, 35, 1569-1572.
[13] Jiang, Y.Y.; Liu, B.; Shi, R.B.; Tu, G.Z. Isolation and structure identification of chemical constituents from Saposhnikovia divaricata (Turcz.) Schischk. Acta Pharm. Sci. 2007, 42, 505-510.
[14] Yang, J.M.; Jiang, H.; Dai, H.L.; Wang, Z.W.; Jia, G.Z.; Meng, X.C. Feeble Antipyretic, Analgesic, and Anti-inflammatory Activities were Found with Regular Dose 4ʹ-O-β-D-Glucosyl-5-O-Methylvisamminol, One of the Conventional Marker Compounds for Quality Evaluation of Radix Saposhnikoviae. Pharmacognosy Magazine. 2017, 13, 168-174.
[15] Yang, J.M.; Jiang, H.; Dai, H.L.; Wang, Z.W.; Jia, G.Z.; Meng, X.C. Polysaccharide enhances Radix Saposhnikoviae efficacy through inhibiting chromones decomposition in intestinal tract. Sci. Rep. 2016, 6, 32698.
[16] Kang, J.Y.; Khan, M.N.; Park, N.H.; Cho, J.Y.; Lee, M.C.; Fujii, H. Antipyretic, analgesic, and anti-inflammatory activities of the seaweed Sargassum fulvellum and Sargassum thunbergii in mice. J. Ethnopharmacol. 2008, 16, 187-190.
[17] Aouey, B.; Samet, A.M.; Fetoui, H.; Simmonds, M.S.; Bouaziz, M. Anti-oxidant, anti-inflammatory, analgesic and antipyretic activities of grapevine leaf extract (Vitis vinifera) in mice and identification of its active constituents by LC-MS/MS analyses. Biomed. Pharmacother. 2016, 84, 1088-1098.
[18] Mathur, S.; Agrawal, D.; Jajoo, A. Photosynthesis: response to high temperature stress. J. Photochem. Photobiol. B. 2014, 137, 116-126.
[19] Scalabrin, E.; Radaellil M.; Rizzato, G.; Bogani, P.; Buiatti, M.; Gambaro, A. Metabolomic analysis of wild and transgenic Nicotiana langsdorffii plants exposed to abiotic stresses: unraveling metabolic responses. Nal. Bioanal. Chem. 2015, 407, 6357-6368.
[20] Fang, Y.; Liao, K.; Du, H.; Xu, Y.; Song, H.; Li, X. A stress-responsive NAC transcription factor SNAC3 confers heat and drought tolerance through modulation of reactive oxygen species in rice. J. Exp. Bot. 2015, 66, 6803-6817.
[21] Song, Q.; Cao, W.L.; Jiang, H.; Zhang, A.H.; Meng, X.C. H2O2 Improves Quality of Radix scutellariae Through Anti-oxidant Effect. Pharmacognosy Magazine. 2016, 12, 84-90.
[22] Sanchita, R.; Mishra, A.; Dhawan, S.S.; Shirke, P.A.; Gupta, M.M. Physiological performance, secondary metabolite and expression profiling of genes associated with drought tolerance in Withania somnifera. Protoplasma. 2015, 252, 1439-1450.
[23] Huang, L.Q.; Guo, L.P. Secondary metabolites accumulating and geoherbs formation under enviromental stress. J. Chin. Mater. Med. 2007, 32, 277-280.
[24] Dai, J.; Chen, X.; Cheng, W.; Liu, X.; Fan, X.; Shen, Z. A sensitive liquid chromatography-mass spectrometry method for simultaneous determination of two active chromones from Saposhnikovia root in rat plasma and urine. J. Chromatogr. B. 2008, 868, 13-19. |