Abstract
The search for neuronotrophic factors addressing CNS neurons requires CNS neuronal cell cultures to quantitate putative effects on neuronal survival. Investigation of neurons dissociated from several embryonic CNS tissues have shown that their short-term survival requires supplementation of the culture medium with either pyruvate or the enzyme catalase. Pyruvate can be replaced with alpha-ketoglutarate or oxaloacetate, or with amino acids capable to transaminate to these three metabolites in the presence of exogenous alpha-ketoacid acceptors. Experiments were designed to evaluate the ability of cultured CNS neurons to utilize glucose as their primary source. We show that: (1) catalase requires the availability of glucose in the medium in order to exert its neuronal maintenance effect, (2) in the absence of catalase, the cells are unable to metabolize glucose through the tricarboxylic acid cycle, (3) catalase restores the neuronal ability to utilize glucose for oxydative metabolism, and renders redundant the use of other sources such as glutamate conversion to alpha-ketoglutarate, (4) graded concentrations of glucose in the medium affect in parallel these metabolic activities and the viability of the cultured neurons, and (5) anti-oxidant agents other than catalase mimic the catalase effects. We conclude that dissociated embryonic CNS neurons suffer from a block in glucose utilization which results from an imbalance between free radical attack and cellular defenses to it and speculate on a more general involvement of peroxidation damage in the trophic requirements for neuronal survival.
MeSH Terms
Animals
Antioxidants/pharmacology
Carbon Dioxide/metabolism
Catalase/pharmacology
Cell Survival/drug effects
Cells, Cultured
Central Nervous System/cytology,drug effects,metabolism
Chick Embryo
Glucose/metabolism
Glutamates/metabolism
Glutamic Acid
Neurons/cytology,drug effects,metabolism
Pyruvates/pharmacology
Pyruvic Acid
Rats
Chemicals
Antioxidants
Glutamates
Pyruvates
Carbon Dioxide
Glutamic Acid
Pyruvic Acid
Catalase
Glucose
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Chau R M
Department of Biology, School of Medicine, University California San Diego, La Jolla 92093.
Skaper S D
Varon S
References (15)
15 references, click to expand
-
Transamination of glutamate to tricarboxylic acid-cycle intermediates in cultured neurons correlates with the ability of oxo acids to support neuronal survival in vitro.
Biochem J. 1986 Mar 15;234(3):605-10
PMID: 2872884
-
Low molecular weight agents support survival of cultured neurons from the central nervous system.
J Neurosci. 1984 Mar;4(3):654-8
PMID: 6368763
-
Pyruvate participation in the low molecular weight trophic activity for central nervous system neurons in glia-conditioned media.
J Neurosci. 1985 Jan;5(1):23-8
PMID: 3917493
-
Catalase protection of neuronal survival in vitro is not directed to the accumulation of peroxides in the culture medium.
Int J Dev Neurosci. 1987;5(1):1-10
PMID: 3503486
-
Neuronotrophic and neurite-promoting factors and their clinical potentials.
Dev Neurosci. 1983-1984;6(2):73-100
PMID: 6088207
-
Age-dependent control of dorsal root ganglion neuron survival by macromolecular and low-molecular-weight trophic agents and substratum-bound laminins.
Brain Res. 1986 Jan;389(1-2):39-46
PMID: 3948019
-
Continuous infusion of nerve growth factor prevents basal forebrain neuronal death after fimbria fornix transection.
Proc Natl Acad Sci U S A. 1986 Dec;83(23):9231-5
PMID: 3466184
-
A unifying hypothesis for the cause of amyotrophic lateral sclerosis, parkinsonism, and Alzheimer disease.
Ann Neurol. 1981 Dec;10(6):499-505
PMID: 6173010
-
Chemically defined requirements for the survival of cultured 8-day chick embryo ciliary ganglion neurons.
Brain Res. 1984 Jun 8;302(2):281-90
PMID: 6428706
-
Specific replacements of pyruvate for trophic support of central and peripheral nervous system neurons.
J Neurochem. 1985 Sep;45(3):926-34
PMID: 4031868
-
Stimulation of resistance to 6-hydroxydopamine in a human neuroblastoma cell line by nerve growth factor.
Neurosci Lett. 1981 Oct 23;26(2):157-61
PMID: 6272167
-
Nerve growth factor promotes survival of septal cholinergic neurons after fimbrial transections.
J Neurosci. 1986 Aug;6(8):2155-62
PMID: 3746405
-
Amelioration of cholinergic neuron atrophy and spatial memory impairment in aged rats by nerve growth factor.
Nature. 1987 Sep 3-9;329(6134):65-8
PMID: 3627243
-
Endogenous and exogenous factors support neuronal survival and choline acetyltransferase activity in embryonic spinal cord cultures.
Brain Res. 1983 May 9;267(1):57-66
PMID: 6860950
-
Purification of a human red blood cell protein supporting the survival of cultured CNS neurons, and its identification as catalase.
J Neurosci. 1986 Apr;6(4):1114-21
PMID: 3009731