Nicorandil reverses the behavioral changes and brain oxidative stress in a model of schizophrenia induced by ketamine in mice

被引:0
作者
Abdel-Salam O.M.E. [1 ]
El-Shamarka M.E.-S. [1 ]
机构
[1] Department of Toxicology and Narcotics, National Research Centre, Tahrir Street, Dokki, Cairo
关键词
Brain oxidative stress; Glibenclamide; Mice; Nicorandil; Open field; Social interaction;
D O I
10.1007/s00580-017-2471-x
中图分类号
学科分类号
摘要
We examined the effect of the KATP channel opener nicorandil and the KATP channel blocker glibenclamide on the behavioral and biochemical responses to ketamine in mice. Ketamine was injected at 30 mg/kg intraperitoneally (i.p.) daily for 2 weeks, and mice were then treated with either saline, glibenclamide (5 mg/kg), nicorandil (1 or 5 mg/kg), sucrose 1 g/kg, or glibenclamide + sucrose 1 g/kg, i.p. daily for another 8 days. The control group received only saline. Data indicated that (i) ketamine increased locomotion, rearing, and grooming behaviors. Locomotor activity increased in the center while rearing activity increased in the periphery and center of the open field. Social interaction was markedly decreased by ketamine. Nicorandil at 1 mg/kg increased and at 5 mg/kg produced marked depression in ambulation in the center of the field and in rearing in the field periphery. Locomotor activity and rearing of ketamine-treated mice were not affected by glibenclamide. Meanwhile, either agent reversed the increase in grooming and the inhibition of social interaction caused by ketamine. Sucrose had no significant effect on grooming or social interaction of mice given ketamine but increased ambulation and rearing activity in the field center. (ii) Ketamine caused a significantly elevated brain lipid peroxidation (malondialdehyde) while decreasing reduced glutathione, nitric oxide, and paraoxonase-1 activity. These biochemical alterations were markedly alleviated by nicorandil or glibenclamide. The study suggests a potential therapeutic value for the KATP channel opener nicorandil in the ketamine model of schizophrenia. © 2017, Springer-Verlag London.
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页码:955 / 963
页数:8
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  • [11] Chang Y., Lee J.J., Hsieh C.Y., Hsiao G., Chou D.S., Sheu J.R., Inhibitory effects of ketamine on lipopolysaccharide-induced microglial activation, Mediat Inflamm, 2009, (2009)
  • [12] Cnubben N.H., Rietjens I.M., Wortelboer H., van Zanden J., van Bladeren P.J., The interplay of glutathione-related processes in antioxidant defense, Environ Toxicol Pharmacol, 10, 4, pp. 141-152, (2001)
  • [13] De Luca M.T., Meringolo M., Spagnolo P.A., Badiani A., The role of setting for ketamine abuse: clinical and preclinical evidence, Rev Neurosci, 23, 5-6, pp. 769-780, (2012)
  • [14] Devanarayanan S., Nandeesha H., Kattimani S., Sarkar S., Relationship between matrix metalloproteinase-9 and oxidative stress in drug-free male schizophrenia: a case control study, Clin Chem Lab Med, 54, 3, pp. 447-452, (2016)
  • [15] Ellman G.L., Tissue sulfhydryl groups, Arch Biochem Biophys, 82, pp. 70-77, (1959)
  • [16] File S.E., Anxiolytic action of a neurokinin1 receptor antagonist in the social interaction test, Pharmacol Biochem Behav, 58, 3, pp. 747-752, (1997)
  • [17] Gutteridge J.M.C., Lipid peroxidation and antioxidants as biomarkers of tissue damage, Clinc Chem, 41, pp. 1819-1828, (1995)
  • [18] Halliwell B., Role of free radicals in the neurodegenerative diseases: therapeutic implications for antioxidant treatment, Drugs Aging, 18, pp. 685-716, (2001)
  • [19] Halliwell B., Oxidative stress and neurodegeneration: where are we now?, J Neurochem, 97, pp. 1634-1658, (2006)
  • [20] Halliwell B., Biochemistry of oxidative stress, Biochem Soc Trans, 35, pp. 1147-1150, (2007)