Abstract
Among glutamate receptor subtypes, the N-methyl-D-aspartate(NMDA) receptor plays a key role in brain development and cognitive processes, and mediates excitotoxic injury. To test the hypothesis that prolonged seizures may affect NMDA receptor characteristics in the developing brain, a 30-min episode of generalized seizures was induced in rats at 5, 10, 15 and 25 d of age by i.p. administrations of bicuculline. NMDA receptors were analyzed using specific binding of [3H]-labeled(+)-5-methyl-10,11-dihydro-5H-dibenzo-[a,d]-cycloheptene-5,10-imine maleate (MK-801) in brain membrane preparations, and allosteric regulation was studied by addition of glutamate (10 μM) and glycine (10 μM). In control pups, total number of binding sites increased between 5 and 25 d,Bmax values varying from 1032 ± 93 to 2311 ± 449 fmol/mg protein, whereas receptor affinity decreased with age, the affinity constant (Kd) changing from 20.9 ± 2.0 to 29.1 ± 2.0 nM. Activation of NMDA receptors by glutamate and glycine led to age-dependent decreases in Kd values, from 30% at 5 d to 72% at 25 d. Seizures altered receptor density only at 5 d (by 40%). Receptor affinity was increased after seizures at 5, 15 and 25 d (from 12 to 60%). The capacity of receptor activation by glutamate and glycine was significantly reduced by seizures at 5 d. There was no change either in density nor affinity of receptors at 10 d. Therefore, as previously shown for central adenosine and benzodiazepine receptors, sustained seizures are able to alter the characteristics of NMDA receptors in a specific way depending on the maturational stage, suggesting developmental changes in the mechanisms of brain response to seizures.
Similar content being viewed by others
Log in or create a free account to read this content
Gain free access to this article, as well as selected content from this journal and more on nature.com
or
Abbreviations
- MK-801:
-
(+)-5-methyl-10,11-dihydro-5H-dibenzo-[a,d]-cycloheptene-5,10-imine maleate
- NMDA:
-
N-methyl-D-aspartate
- TTC:
-
2,3,5-triphenyltetrazolium chloride
- nH:
-
Hill coefficient
References
Sahai S 1990 Glutamate in the mammalian CNS. Eur Arch Psychiatry Clin Neurosci 240: 121–133
Zorumski CF, Olney JW 1993 Excitotoxic neuronal damage and neuropsychiatric disorders. Pharmacol Ther 59: 145–162
Balazs R, Hack N, Jorgensen OS 1988 Stimulation of N- methyl-D-aspartate as a trophic effect on differentiating cerebellar granule cells. J Neurophysiol 69: 230–240
Mattson MP, Lee RE, Adams ME, Guthrie PB, Kater SB 1988 Interaction between entorhinal axons and target hippocampal neurons: a role for glutamate in the developing of hippocampal circuitry. Neuron 1: 865–876
McEntee WJ, Crook TH 1993 Glutamate: its role in learning, memory, and the aging brain. Psychopharmacology 111: 391–401
Lipton SA, Rosenberg PA 1994 Excitatory amino acid as a final common pathway for neurologic disorders. N Engl J Med 330: 613–622
Toru M, Kurumaji A, Ishimaru M 1994 Excitatory amino acids: implications for psychiatric disorder research. Life Sci 55: 1683–1699
Cunningham MD, Ferkany JW, Enna SJ 1993 Excitatory amino acid receptors: a gallery of new targets for pharmacological intervention. Life Sci 54: 135–148
Scatton B 1993 The NMDA receptor complex. Fundam Clin Pharmacol 7: 389–400
Moshé SL, Albala BJ, Ackermann RF, Engel J 1983 Increased seizure susceptibility of the immature brain. Dev Brain Res 7: 81–85
Holmes GL 1991 The long-term effects of seizures on the developing brain: clinical and laboratory issues. Brain Dev 13: 393–409
McDonald JW, Silverstrain FS, Johnston MV 1988 Neurotoxicity of N-methyl-D-aspartate is markedly enhanced in developing rat central nervous system. Brain Res 459: 200–203
Benveniste M, Clements J, Vyklicky L, Mayer ML 1990 A kinetic analysis of the modulation of N-methyl-D-aspartic acid receptors by glycine in mouse cultured hippocampal neurone. J Physiol 428: 333–357
Bradford MM 1976 A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem 72: 248–254
Scatchard G 1949 The attraction of proteins for small molecules and ions. Ann NY Acad Sci 51: 660–672
Chang D, Baram TZ 1994 Status epilepticus results in reversible neuronal injury in infant rat hippocampus: novel use of a marker. Dev Brain Res 77: 133–136
Bederson JB, Pitts LH, Germano SM, Nishimura MC, Davis RL, Bartkowski HM 1986 Evaluation of 2,3,5-triphenyltetrazolium chloride as a stain for detection and quantification of experimental cerebral infarction in rats. Stroke 17: 1304–1308
McDonald JW, Johnston MV 1990 Physiological and pathophysiological roles of excitatory amino acids during central nervous system development. Brain Res Rev 15: 41–70
Mishra OP, Delivoria-Papadopoulos M 1992 Modification of modulatory sites of NMDA receptor in the fetal guinea pig brain during development. Neurochem Res 17: 1223–1228
Foster AC, Wong EHF 1987 The novel anticonvulsant MK801 binds to the activated state of the N-methyl-D-aspartate receptor in rat brain. Br J Pharmacol 91: 403–409
Javitt DC, Zukin SR 1989 Biexponential kinetics of[3H]MK-801 binding evidence to access to closed and openN- methyl-D-aspartate receptor channels. Mol Pharmacol 35: 387–393
Reynolds IJ, Miller RJ 1988 Multiple sites for the regulation of the N-Methyl-D-aspartate receptor. Mol Pharmacol 33: 581–584
Insel TR, Miller LP, Gelhard RE 1990 The ontogeny of excitatory amino acid receptors in rat brain. I.N- Methyl-D-aspartate and quisqualate receptors. Neuroscience 35: 31–43
McDonald JW, Johnston MV, Young AB 1990 Differential ontogenic development of three receptors comprising the NMDA receptor/channel complex in the rat hippocampus. Exp Neurol 110: 237–247
Moriyoshi K, Masu M, Ishii T, Shigemoto R, Mizuno N, Nakanishi S 1991 Molecular cloning and characterization of the rat NMDA receptor. Nature 354: 31–37
Ishii T, Moriyoshi K, Sugihara H, Sakurada K, Kadotani H, Yokoi M, Akazawa C, Shigemoto R, Mizuno N, Masu M, Nakanishi M 1992 Molecular characterization of the family of the N-methyl-D-aspartate receptor subunits. J Biol Chem 268: 2836–2843
Monyer H, Sprengel R, Schoepfer R, Herb A, Higuchi M, Lomeli H, Burnashev N, Sakmann B, Seeburg PH 1992 Heteromeric NMDA receptors: molecular and functional distinction of subtypes. Science 256: 1217–1221
Sucher NJ, Akbarian S, Chi CL, Leclerc CL, Awobuluyl M, Deitcher DL, Wu MK, Yuan JP, Jones EG, Lipton SA 1995 Expression pattern of a novel NMDA receptor-like subunit (NMDAR-L) in the rodent brain. J Neurosci 15: 6509–6520
Wenzel A, Fritschy JM, Mohler H, Benke D 1997 NMDA receptor heterogeneity during postnatal development of the rat brain: differential expression of the NR2A, NR2B, and NR2C subunit proteins. J Neurochem 68: 469–478
De Feo MR, Mecarelli O, Ricci GF 1985 Bicuculline- and allylglycine-induced epilepsy in developing rat. Exp Neurol 90: 411–421
Baram TZ, Snead OC 1990 Bicuculline induced seizures in infant rats: ontogeny of behavioral and electrocortical phenomena. Dev Brain Res 57: 291–295
Wasterlain CG, Shirasaka Y 1994 Seizures, brain damage and brain development. Brain Dev 16: 279–295
Auer RN, Kalimo H, Olsson Y, Siesjö BK 1985 The temporal evolution of hypoglycemic brain damage. II. Light- and electron-microscopic findings in the hippocampal gyrus and subiculum of the rat. Acta Neuropathol 67: 25–36
Sperber EF, Haas KZ, Stanton PK, Moshé SL 1991 Resistance of the immature hippocampus to seizure-induced synaptic reorganization. Dev Brain Res 60: 88–93
Lombroso CT 1996 Neonatal seizures: a clinician's overview. Brain Dev 18: 1–28
Monyer H, Burnashev N, Laurie DJ, Sakmann B, Seeburg PH 1994 Developmental and regional expression in the rat brain and functional properties of four NMDA receptors. Neuron 12: 529–540
Daval JL, Sarfati A 1987 Effects of bicuculline-induced seizures on benzodiazepine and adenosine receptors in developing rat brain. Life Sci 41: 1685–1693
Daval JL, Werck MC 1991 Autoradiographic changes in brain adenosine A1 receptors and their coupling to G proteins following seizures in the developing rat. Dev Brain Res 59: 237–247
Werck MC, Daval JL 1991 Autoradiographic changes in central benzodiazepines binding sites and their coupling to GABA receptors after seizures in the developing rat. Pediatr Res 30: 100–105
Kvale I, Fosse VM, Fonnum F 1983 Development of neurotransmitter parameters in the lateral geniculate body, superior colliculus and visual cortex of the albino rat. Dev Brain Res 7: 137–145
Christensen H, Fonnum F 1992 The ontogeny of the uptake systems for glutamate, GABA, and glycine in synaptic vesicles isolated from rat brain. Neurochem Res 17: 457–462
Danbolt NC 1994 The high affinity uptake system for excitatory amino acids in the brain. Prog Neurobiol 44: 377–396
Author information
Authors and Affiliations
Rights and permissions
About this article
Cite this article
Doriat, JF., Cortey, A. & Daval, JL. Selective Alterations in Binding Kinetic Parameters and Allosteric Regulation of N-Methyl-D-Aspartate Receptors after Prolonged Seizures in the Developing Rat Brain. Pediatr Res 43, 415–420 (1998). https://doi.org/10.1203/00006450-199803000-00018
Received:
Accepted:
Issue date:
DOI: https://doi.org/10.1203/00006450-199803000-00018


