Abstract
The primary mechanism of cyanide (CN) intoxication is the inhibition of metabolism in the central nervous system. We determined the effects of CN on several biochemical processes in neuroblastoma x glioma hybrid NG108-15 cells, which possess numerous neuronal properties. These cells were not sensitive to a high concentration (1 mM) of NaCN, but became sensitive in the presence of the anaerobic glycolysis inhibitors sodium iodoacetate (IA) and 2-deoxyglucose (2-DG):cellular metabolic processes (e.g., DNA, RNA and protein synthesis) decreased to about 40% of control due to treatment with 0.5 mM NaCN + 0.05 mM IA and 0.1 mM NaCN + 20 mM 2-DG. ATP in cells exposed to 0.01 or 0.1 mM NaCN + 20 mM 2-DG was reduced 75% and 100% respectively within one min. Pretreatment of cells with the CN antidote cobalt (II) chloride (CoCl2) (0.06-0.18 mM) for 5 min prevented the depression of both [3H]leucine incorporation and ATP synthesis due to 1 mM NaCN + 20 mM 2-DG in a concentration-dependent manner. A proposed CN antidote alpha-ketoglutaric acid (disodium salt) also prevented the depression of cellular metabolism due to NaCN plus 2-DG. These results indicate that blocking anaerobic glycolysis makes NG108-15 cells sensitive to a low concentration of CN. Thus NG108-15 cells should be useful to study the mechanisms of neurotoxicity of CN and to test antidotes.
MeSH Terms
Adenosine Triphosphate/metabolism
Animals
Clone Cells
Cobalt/pharmacology
Deoxyglucose/pharmacology
Glioma
Hybrid Cells/drug effects,metabolism
Iodoacetates/pharmacology
Iodoacetic Acid
Kinetics
Leucine/metabolism
Neuroblastoma
Neurons/drug effects,metabolism
Protein Biosynthesis
Sodium Cyanide/pharmacology
Chemicals
Iodoacetates
Cobalt
Adenosine Triphosphate
Deoxyglucose
cobaltous chloride
Leucine
Sodium Cyanide
Iodoacetic Acid
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Ray P
Division of Experimental Therapeutics, Walter Reed Army Institute of Research, Washington, DC 20307-5100.
Monroe F L
Berman J D
Fiedler J
References (12)
12 references, click to expand
-
Cyanide intoxication and its mechanism of antagonism.
Annu Rev Pharmacol Toxicol. 1984;24:451-81
PMID: 6428300
-
Cyanide intoxication: protection with cobaltous chloride.
Toxicol Appl Pharmacol. 1973 Mar;24(3):449-56
PMID: 4704816
-
Cyanide-induced neurotoxicity: mechanisms of attenuation by chlorpromazine.
Toxicol Appl Pharmacol. 1988 Oct;96(1):60-7
PMID: 3188027
-
Regulation of adenylate cyclase activity mediated by muscarinic acetylcholine receptors.
Proc Natl Acad Sci U S A. 1978 Apr;75(4):1788-91
PMID: 205870
-
Hyperammonemia, increased brain neutral and aromatic amino acid levels, and encephalopathy induced by cyanide in mice.
Toxicol Appl Pharmacol. 1989 Jul;99(3):415-20
PMID: 2749730
-
Artifacts in the definition of toxicity by cyanides and cyanogens.
Fundam Appl Toxicol. 1983 Sep-Oct;3(5):400-8
PMID: 6315515
-
Effects of oxygen on the antagonism of cyanide intoxication: cytochrome oxidase, in vitro.
Toxicol Appl Pharmacol. 1984 Jun 15;74(1):57-62
PMID: 6328698
-
Uptake and energy-dependent extrusion of calcium in neural cells in culture.
Eur J Biochem. 1980 Feb;103(3):597-611
PMID: 6444579
-
Application of a hepatocyte-erythrocyte coincubation system to studies of cyanide antidotal mechanisms.
Toxicol Appl Pharmacol. 1987 Mar 30;88(1):24-34
PMID: 3564031
-
Structural, electrophysiological, biochemical, and pharmacological properties of neuroblastoma-glioma cell hybrids in cell culture.
Int Rev Cytol. 1977;49:99-170
PMID: 16829
-
Cyanides and their toxicity: A literature review.
Vet Q. 1980 Apr;2(2):104-14
PMID: 22039904
-
Sympathetic neurons grown in culture generate ATP by glycolysis: correlation between ATP content and [3H]norepinephrine uptake and storage.
Brain Res. 1985 Dec 16;359(1-2):397-401
PMID: 4075161