Prevention of Monensin-Induced Hyperpolarization in NG108-15 Cells

被引:0
作者
Jeffrey A. Doebler
机构
[1] US Army Medical Research Institute of Chemical Defense,Neurotoxicology Branch, Pharmacology Division
来源
Neurochemical Research | 2000年 / 25卷
关键词
Action potential; chlorpromazine; In vitro model; membrane potential; NG108-15 (neuroblastoma X glioma) hybrid cells; monensin; ouabain; quinine; verapamil; trifluoperazine;
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摘要
The NG108-15 (neuroblastoma X glioma hybrid) cell line was used as an in vitro neuronal model to evaluate potential antagonists of the Na+-selective carboxylic ionophore monensin. Changes in membrane electrical characteristics induced by monensin with and without the simultaneous administration of antagonists were measured using intracellular microelectrode techniques. Bath application of monensin (3 μM) produced a hyperpolarization of ≃ 35 mV. Monensin also altered the generation of action potentials in response to electrical stimulation in 14 of 24 (58%) exposed cells, as evident in a partial or complete loss of action potentials or in an alteration of action potential waveform. The antagonists used were Na+-K+ pump inhibitor ouabain (1–3 μM), the Ca2+-dependent K+ channel blocker quinine (3–30 μM) or drugs known to influence Ca2+ signaling in cells, i.e., trifluoperazine (3–10 μM), verapamil (1–10 μM) or chlorpromazine (3–30 μM). On a molar basis, ouabain was the most and trifluoperazine the least effective of the antagonists. Quinine, verapamil and chlorpromazine all prevented the development of the hyperpolarization in an approximate concentration-dependent manner. However, none of these drugs was able to block the effects of monensin on action potentials. Indeed, high concentrations of the antagonists that were most effective in preventing the hyperpolarization accentuated impairments in action potential generation and also reduced input resistance in many cells. Thus, none of these antagonists appears suitable for transition to in vivo antidotal protection studies.
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页码:941 / 948
页数:7
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  • [1] Raun A. P.(1976)Effect of monensin on rumen fermentation in vitro and in vivo J. Anim. Sci. 43 670-677
  • [2] Cooley C. O.(1983)Cardiovascular toxicity of ionophores used as feed additives Adv. Exp. Med. Biol. 161 543-561
  • [3] Potter E. L.(1996)Monensin toxicosis in swine J. Vet. Diagn. Invest. 8 396-397
  • [4] Rathmacher R. P.(1982)Pharmacology and toxicology of the monovalent carboxylic ionophores Ann. Rev. Pharmacol. Toxicol. 22 465-490
  • [5] Richardson L. F.(1985)Thirteen cationic ionophores: their acute toxicity, neurobehavioral and membrane effects Drug Chem. Toxicol. 8 451-468
  • [6] Pressman B. C.(1999)Membrane potential and resistance changes in NG108–15 cells: An in vitro model to study membrane-active compounds Toxicol. Meth. 9 35-45
  • [7] Fahim M.(2000)Comparative effects of carboxylic ionophores on membrane potential and resistance of NG108–15 cells Toxicol. In Vitro 14 235-243
  • [8] Miskimins D. W.(1989)Psychotropic drugs block voltage-gated ion channels in neuroblastoma cells Brain Res. 476 140-144
  • [9] Neiger R. D.(1987)Neuroleptics antagonize a calcium-activated potassium channel in airway smooth muscle J. Gen. Physiol. 89 339-352
  • [10] Pressman B. C.(1979)Selective binding of antipsychotics and other psychoactive agents to the calcium-dependent activator of cyclic nucleotide phosphodiesterase J. Pharm. Exp. Ther. 208 454-459