Acute psychoactive and toxic effects of D. metel on mice explained by 1H NMR based metabolomics approach

被引:0
作者
Yonghong Fu
Zhihong Si
Pumin Li
Minghui Li
He Zhao
Lei Jiang
Yuexiao Xing
Wei Hong
Lingyu Ruan
Jun-Song Wang
机构
[1] Nanjing University of Science and Technology,Center for Molecular Metabolism, School of Environmental and Biological Engineering
[2] Cancer Hospital,undefined
[3] Chinese Academy of Sciences,undefined
来源
Metabolic Brain Disease | 2017年 / 32卷
关键词
Mice; Toxicity; NMR; Metabolomics;
D O I
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中图分类号
学科分类号
摘要
Datura metel L. (D. metel) is one well-known folk medical herb with wide application and also the most abused plants all over the world, mainly for spiritual or religious purpose, over-dosing of which often produces poisonous effects. In this study, mice were orally administered with the extract of D. metel once a day at doses for 10 mg/kg and 40 mg/kg for consecutive 4 days, 1H NMR based metabolomics approach aided with histopathological inspection and biochemical assays were used for the first time to study the psychoactive and toxic effects of D. metel. Histopathological inspection revealed obvious hypertrophy of hepatocytes, karyolysis and karyorrhexis in livers as well as distinct nerve cell edema, chromatolysis and lower nuclear density in brains. The increased tissue level of methane dicarboxylic aldehyde (MDA) and superoxide dismutase (SOD), decreased tissue level of glutathione (GSH) along with increased serum level of aspartate aminotransferase (AST) and alanine aminotransferase (ALT) suggested brain and liver injury induced by D. metel. Orthogonal signal correction–partial least squares–discriminant analysis (OSC–PLS–DA) of NMR profiles supplemented with correlation network analysis revealed significant altered metabolites and related pathway that contributed to oxidative stress, energy metabolism disturbances, neurotransmitter imbalance and amino acid metabolism disorders.
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页码:1295 / 1309
页数:14
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[1]  
Amores-Sánchez MI(1999)Glutamine, as a precursor of glutathione, and oxidative stress Mol Genet Metab 67 100-105
[2]  
Medina MÁ(2004)Reactive oxygen species: metabolism, oxidative stress, and signal transduction Annu Rev Plant Biol 55 373-399
[3]  
Apel K(2006)The glutamate/GABA-glutamine cycle: aspects of transport, neurotransmitter homeostasis and ammonia transfer J Neurochem 98 641-653
[4]  
Hirt H(1986)Intrabiliary glutathione hydrolysis. A source of glutamate in bile J Biol Chem 261 7860-7865
[5]  
Bak LK(2011)Cytotoxic activity of withanolides isolated from Tunisian Phytochemistry 72 2031-2036
[6]  
Schousboe A(2002) L Amino Acids 23 317-323
[7]  
Waagepetersen HS(2003)In-vivo proton MR-spectroscopy of the human brain: assessment of N-acetylaspartate (NAA) reduction as a marker for neurodegeneration J Pharm Biomed Anal 31 885-891
[8]  
Ballatori N(2001)Investigation of the effect of space environment on the contents of atropine and scopolamine in Eur J Pharmacol 428 315-321
[9]  
Jacob R(2005) by capillary zone electrophoresis Trends Pharmacol Sci 26 36-43
[10]  
Boyer J(2004)Role of GABA B receptors in the sedative/hypnotic effect of γ-hydroxybutyric acid Fitoterapia 75 389-391