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PMID: 11606641 Published · ppublish English Journal Article Research Support, U.S. Gov't, P.H.S.

Physiological and structural evidence for hippocampal involvement in persistent seizure susceptibility after traumatic brain injury.

Golarai G, Greenwood AC, Feeney DM, Connor JA

Abstract

Epilepsy is a common outcome of traumatic brain injury (TBI), but the mechanisms of posttraumatic epileptogenesis are poorly understood. One clue is the occurrence of selective hippocampal cell death after fluid-percussion TBI in rats, consistent with the reported reduction of hippocampal volume bilaterally in humans after TBI and resembling hippocampal sclerosis, a hallmark of temporal-lobe epilepsy. Other features of temporal-lobe epilepsy, such as long-term seizure susceptibility, persistent hyperexcitability in the dentate gyrus (DG), and mossy fiber synaptic reorganization, however, have not been examined after TBI. To determine whether TBI induces these changes, we used a well studied model of TBI by weight drop on somatosensory cortex in adult rats. First, we confirmed an early and selective cell loss in the hilus of the DG and area CA3 of hippocampus, ipsilateral to the impact. Second, we found persistently enhanced susceptibility to pentylenetetrazole-induced convulsions 15 weeks after TBI. Third, by applying GABA(A) antagonists during field-potential and optical recordings in hippocampal slices 3 and 15 weeks after TBI, we unmasked a persistent, abnormal APV-sensitive hyperexcitability that was bilateral and localized to the granule cell and molecular layers of the DG. Finally, using Timm histochemistry, we detected progressive sprouting of mossy fibers into the inner molecular layers of the DG bilaterally 2-27 weeks after TBI. These findings are consistent with the development of posttraumatic epilepsy in an animal model of impact head injury, showing a striking similarity to the enduring behavioral, functional, and structural alterations associated with temporal-lobe epilepsy.

MeSH Terms
2-Amino-5-phosphonovalerate/pharmacology Animals Brain Injuries/complications,physiopathology Cell Count Cell Death Chronic Disease Dentate Gyrus/drug effects,pathology,physiopathology Disease Models, Animal Disease Susceptibility/physiopathology Electric Stimulation Excitatory Postsynaptic Potentials/drug effects GABA Antagonists/pharmacology GABA-A Receptor Antagonists Hippocampus/pathology,physiopathology In Vitro Techniques Male Mossy Fibers, Hippocampal/pathology,physiopathology Neuronal Plasticity Pentylenetetrazole Perforant Pathway/drug effects,physiopathology Rats Rats, Sprague-Dawley Sclerosis/etiology,pathology Seizures/etiology,physiopathology Wounds, Nonpenetrating
Chemicals
GABA Antagonists GABA-A Receptor Antagonists 2-Amino-5-phosphonovalerate Pentylenetetrazole
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Golarai G
Department of Neurosciences, University of New Mexico, Albuquerque, New Mexico 87131-5223, USA. [email protected]
Greenwood A C
Feeney D M
Connor J A
References (78)
78 references, click to expand
  1. Hyperexcitability in a model of cortical maldevelopment.
    Cereb Cortex. 1996 May-Jun;6(3):514-23 PMID: 8670677
  2. Progressive neuronal loss induced by kindling: a possible mechanism for mossy fiber synaptic reorganization and hippocampal sclerosis.
    Brain Res. 1990 Sep 10;527(1):1-6 PMID: 2282474
  3. Mossy fiber synaptic reorganization in the epileptic human temporal lobe.
    Ann Neurol. 1989 Sep;26(3):321-30 PMID: 2508534
  4. NMDA receptor-dependent plasticity of granule cell spiking in the dentate gyrus of normal and epileptic rats.
    J Neurophysiol. 2000 Dec;84(6):2868-79 PMID: 11110816
  5. Mossy fiber reorganization in the epileptic hippocampus.
    Curr Opin Neurol. 1997 Apr;10(2):103-9 PMID: 9146991
  6. A population-based study of seizures after traumatic brain injuries.
    N Engl J Med. 1998 Jan 1;338(1):20-4 PMID: 9414327
  7. Electrographic seizures and new recurrent excitatory circuits in the dentate gyrus of hippocampal slices from kainate-treated epileptic rats.
    J Neurosci. 1996 Jul 15;16(14):4438-48 PMID: 8699254
  8. Evaluation of head trauma by computed tomography.
    Radiology. 1977 May;123(2):345-50 PMID: 847199
  9. Synaptic plasticity and the organization of behaviour after early and late brain injury.
    Can J Exp Psychol. 1999 Mar;53(1):62-76 PMID: 10389490
  10. Amphetamine, haloperidol, and experience interact to affect rate of recovery after motor cortex injury.
    Science. 1982 Aug 27;217(4562):855-7 PMID: 7100929
  11. Mossy fiber synaptic reorganization induced by kindling: time course of development, progression, and permanence.
    J Neurosci. 1991 Sep;11(9):2795-803 PMID: 1880549
  12. Epilepsy after penetrating head injury. I. Clinical correlates: a report of the Vietnam Head Injury Study.
    Neurology. 1985 Oct;35(10):1406-14 PMID: 3929158
  13. Alumina gel injections into the temporal lobe of rhesus monkeys cause complex partial seizures and morphological changes found in human temporal lobe epilepsy.
    J Comp Neurol. 1998 Nov 16;401(2):266-90 PMID: 9822153
  14. NMDA receptor dependence of kindling and mossy fiber sprouting: evidence that the NMDA receptor regulates patterning of hippocampal circuits in the adult brain.
    J Neurosci. 1996 Nov 15;16(22):7398-406 PMID: 8929446
  15. Lesion-induced sprouting of hippocampal mossy fiber collaterals to the fascia dentata in developing and adult rats.
    J Comp Neurol. 1981 Aug 10;200(3):433-59 PMID: 7276246
  16. Selective vulnerability of dentate hilar neurons following traumatic brain injury: a potential mechanistic link between head trauma and disorders of the hippocampus.
    J Neurosci. 1992 Dec;12(12):4846-53 PMID: 1464770
  17. Fluoro-Jade: novel fluorochromes for detecting toxicant-induced neuronal degeneration.
    Toxicol Pathol. 2000 Jan-Feb;28(1):91-9 PMID: 10668994
  18. Evidence of functional mossy fiber sprouting in hippocampal formation of kainic acid-treated rats.
    J Neurosci. 1985 Apr;5(4):1016-22 PMID: 3981241
  19. The effects of seizures on the brain.
    Curr Opin Neurol. 1996 Apr;9(2):97-102 PMID: 8782975
  20. Experimental partial epileptogenesis.
    Curr Opin Neurol. 1999 Apr;12(2):203-9 PMID: 10226754
  21. The role of neural activity in synaptic development and its implications for adult brain function.
    Adv Neurol. 1999;79:133-44 PMID: 10514810
  22. Some preliminary electrophysiological studies on chronic neuronally isolated cerebral cortex.
    Electroencephalogr Clin Neurophysiol. 1957 Nov;9(4):723-5 PMID: 13480247
  23. Neuron loss and axon reorganization in the dentate gyrus of cats infected with the feline immunodeficiency virus.
    J Comp Neurol. 1999 Sep 6;411(4):563-77 PMID: 10421868
  24. Fluoro-Jade: a novel fluorochrome for the sensitive and reliable histochemical localization of neuronal degeneration.
    Brain Res. 1997 Mar 14;751(1):37-46 PMID: 9098566
  25. A permanent change in convulsive threshold in normal and brain-damaged rats with repeated small doses of pentylenetetrazol.
    Epilepsia. 1972 Sep;13(5):663-74 PMID: 4563784
  26. Correlation between MRI findings and long-term outcome in patients with severe brain trauma.
    Neuroradiology. 2000 Dec;42(12):860-7 PMID: 11198202
  27. Alteration of long-lasting structural and functional effects of kainic acid in the hippocampus by brief treatment with phenobarbital.
    J Neurosci. 1992 Nov;12(11):4173-87 PMID: 1432095
  28. The prediction of posttraumatic epilepsy. A mathematical approach.
    Arch Neurol. 1979 Jan;36(1):8-12 PMID: 105690
  29. Activation of the dentate gyrus by pentylenetetrazol evoked seizures induces mossy fiber synaptic reorganization.
    Brain Res. 1992 Oct 16;593(2):257-64 PMID: 1450933
  30. Long-term potentiation deficits and excitability changes following traumatic brain injury.
    Exp Brain Res. 1995;106(2):248-56 PMID: 8566189
  31. Activation of N-methyl-D-aspartate receptors parallels changes in cellular and synaptic properties of dentate gyrus granule cells after kindling.
    J Neurophysiol. 1988 Mar;59(3):1033-54 PMID: 2835445
  32. Lesion-induced mossy fibers to the molecular layer of the rat fascia dentata: identification of postsynaptic granule cells by the Golgi-EM technique.
    J Comp Neurol. 1983 Apr 10;215(3):299-311 PMID: 6189867
  33. Impaired K(+) homeostasis and altered electrophysiological properties of post-traumatic hippocampal glia.
    J Neurosci. 1999 Sep 15;19(18):8152-62 PMID: 10479715
  34. Use-dependent growth of pyramidal neurons after neocortical damage.
    J Neurosci. 1994 Apr;14(4):2140-52 PMID: 8158262
  35. The effects of traumatic brain injury on inhibition in the hippocampus and dentate gyrus.
    Brain Res. 1997 May 16;757(1):119-32 PMID: 9200506
  36. Epileptogenesis in chronically injured cortex: in vitro studies.
    J Neurophysiol. 1993 Apr;69(4):1276-91 PMID: 8492163
  37. Excitotoxic mechanisms of epileptic brain damage.
    Adv Neurol. 1986;44:857-77 PMID: 3706027
  38. Histochemical demonstration of heavy metals. A revised version of the sulphide silver method suitable for both light and electronmicroscopy.
    Histochemistry. 1981;71(1):1-16 PMID: 6785259
  39. Functional alterations in the dentate gyrus after induction of long-term potentiation, kindling, and mossy fiber sprouting.
    J Neurophysiol. 1996 Jan;75(1):343-53 PMID: 8822562
  40. A study of pentylenetetrazol kindling in rats and mice.
    Pharmacol Biochem Behav. 1988 Dec;31(4):867-70 PMID: 3252278
  41. Seizures and recovery from experimental brain damage.
    Exp Neurol. 1988 Dec;102(3):318-24 PMID: 3197789
  42. The calretinin-containing mossy cells survive excitotoxic insult in the gerbil dentate gyrus. Comparison of excitotoxicity-induced neuropathological changes in the gerbil and rat.
    Eur J Neurosci. 1996 Nov;8(11):2371-8 PMID: 8950101
  43. The relationship between traumatic brain injury-induced changes in brain temperature and behavioral and anatomical outcome.
    J Neurosurg. 1994 Jan;80(1):120-32 PMID: 8270998
  44. Functional significance of hippocampal plasticity in epileptic brain: electrophysiological changes of the dentate granule cells associated with mossy fiber sprouting.
    Hippocampus. 1994 Jun;4(3):259-65 PMID: 7842047
  45. Neuronal loss induced in limbic pathways by kindling: evidence for induction of hippocampal sclerosis by repeated brief seizures.
    J Neurosci. 1994 May;14(5 Pt 2):3106-21 PMID: 8182460
  46. Hippocampal volume in normal aging and traumatic brain injury.
    AJNR Am J Neuroradiol. 1997 Jan;18(1):11-23 PMID: 9010515
  47. Electrophysiology of dentate granule cells after kainate-induced synaptic reorganization of the mossy fibers.
    Brain Res. 1992 Feb 28;573(2):305-10 PMID: 1504768
  48. Fornix and hippocampal atrophy in traumatic brain injury.
    Learn Mem. 2000 Nov-Dec;7(6):442-6 PMID: 11112803
  49. Hippocampal mossy fiber sprouting and synapse formation after status epilepticus in rats: visualization after retrograde transport of biocytin.
    J Comp Neurol. 1995 Feb 20;352(4):515-34 PMID: 7721998
  50. Epileptic seizure activity in the acute phase following cortical impact trauma in rat.
    Brain Res. 1994 Feb 21;637(1-2):227-32 PMID: 8180800
  51. Posttraumatic epilepsy and CT scan.
    Neuroradiology. 1978;16:311-3 PMID: 106322
  52. Excessive intra- and supragranular mossy fibers in the dentate gyrus of tottering (tg/tg) mice.
    Brain Res. 1989 Feb 20;480(1-2):294-9 PMID: 2713655
  53. Experimental fluid percussion brain injury: vascular disruption and neuronal and glial alterations.
    Brain Res. 1989 Mar 20;482(2):271-82 PMID: 2706487
  54. Intact functional inhibition in the surround of experimentally induced focal cortical dysplasias in rats.
    J Neurophysiol. 2000 Jul;84(1):600-3 PMID: 10899234
  55. Responses to cortical injury: I. Methodology and local effects of contusions in the rat.
    Brain Res. 1981 Apr 27;211(1):67-77 PMID: 7225844
  56. Specificity of synaptic growth in brain: remodeling induced by kainic acid lesions.
    Prog Brain Res. 1979;51:203-15 PMID: 551480
  57. Temporal and spatial characterization of neuronal injury following lateral fluid-percussion brain injury in the rat.
    Acta Neuropathol. 1996;91(3):236-46 PMID: 8834535
  58. Seizure-induced neuronal injury: vulnerability to febrile seizures in an immature rat model.
    J Neurosci. 1998 Jun 1;18(11):4285-94 PMID: 9592105
  59. Postlesional epilepsy: the ultimate brain plasticity.
    Epilepsia. 2000;41 Suppl 6:S153-61 PMID: 10999537
  60. Modification of seizure activity by electrical stimulation. II. Motor seizure.
    Electroencephalogr Clin Neurophysiol. 1972 Mar;32(3):281-94 PMID: 4110397
  61. Assessing the functional significance of mossy fiber sprouting.
    Epilepsy Res Suppl. 1992;7:251-9 PMID: 1334664
  62. Epileptogenic neurons and circuits.
    Adv Neurol. 1999;79:665-84 PMID: 10514854
  63. Septotemporal variation of the supragranular projection of the mossy fiber pathway in the dentate gyrus of normal and kindled rats.
    Hippocampus. 1992 Oct;2(4):363-72 PMID: 1308194
  64. Possible functional consequences of synaptic reorganization in the dentate gyrus of kainate-treated rats.
    Neurosci Lett. 1992 Mar 16;137(1):91-6 PMID: 1625822
  65. Traumatic porencephalic cyst of the brain.
    J Am Optom Assoc. 1997 Aug;68(8):519-26 PMID: 9279052
  66. GABAergic cells in the dentate gyrus appear to be local circuit and projection neurons.
    Exp Brain Res. 1983;50(2-3):173-82 PMID: 6315469
  67. Causes of epilepsy: contributions of the Rochester epidemiology project.
    Mayo Clin Proc. 1996 Jun;71(6):570-5 PMID: 8642886
  68. Synaptic reorganization in the hippocampus induced by abnormal functional activity.
    Science. 1988 Mar 4;239(4844):1147-50 PMID: 2449733
  69. Brain injury-induced enhanced limbic epileptogenesis: anatomical and physiological parallels to an animal model of temporal lobe epilepsy.
    Epilepsy Res. 1996 Dec;26(1):81-91 PMID: 8985690
  70. From laboratory to clinic: noradrenergic enhancement of physical therapy for stroke or trauma patients.
    Adv Neurol. 1997;73:383-94 PMID: 8959228
  71. Use-dependent structural events in recovery of function.
    Adv Neurol. 1997;73:229-38 PMID: 8959217
  72. Electrophysiology of dentate gyrus granule cells.
    J Neurophysiol. 1984 Feb;51(2):195-209 PMID: 6707720
  73. Synaptic and axonal remodeling of mossy fibers in the hilus and supragranular region of the dentate gyrus in kainate-treated rats.
    J Comp Neurol. 1998 Jan 26;390(4):578-94 PMID: 9450537
  74. Early and late posttraumatic seizures in traumatic brain injury rehabilitation patients: brain injury factors causing late seizures and influence of seizures on long-term outcome.
    Epilepsia. 1999 May;40(5):584-9 PMID: 10386527
  75. Instantaneous perturbation of dentate interneuronal networks by a pressure wave-transient delivered to the neocortex.
    J Neurosci. 1997 Nov 1;17(21):8106-17 PMID: 9334386
  76. Computed tomography of trauma involving brain and facial skull (craniofacial injuries).
    J Comput Assist Tomogr. 1977 Oct;1(4):472-81 PMID: 615227
  77. The dentate gyrus as a regulated gate for the propagation of epileptiform activity.
    Epilepsy Res Suppl. 1992;7:273-80 PMID: 1334666
  78. Axonal growth and neosynaptogenesis in human and experimental hippocampal epilepsy.
    Adv Neurol. 1997;72:45-51 PMID: 8993683
Article Info
Journal
The Journal of neuroscience : the official journal of the Society for Neuroscience
Abbr.
J Neurosci
ISSN
1529-2401
Published
2001-11-01
Pages
8523-37
Language
English
Region
United States
NLM ID
8102140
PMCID
PMC6762822
Subset
IM
Grants
NICHD NIH HHS · K01HD01324 · United States
NINDS NIH HHS · NS-35644 · United States
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