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[34] Harris, E.W., and Cotman, C.W. (1986). Long-term potentiation of guinea pig mossy
fiber responses is not blocked by N-methyl D-aspartate antagonists. Neurosci Lett ,
70(1), p. 132-7.
[35] Goddard, G.V., McIntyre, D.C., and Leech, C.K. (1969). A permanent change in brain
function resulting from daily electrical stimulation. Exp Neurol, 25(3), p. 295-330.
[36] Racine, R. (1978). Kindling: the first decade. Neurosurgery , 3(2), p. 234-52.
[37] Mody, I. (1993). The molecular basis of kindling . Brain Pathol , 3(4), p. 395-403.
[38] Weiss, S.R., and Post, R.M. (1998). Kindling: separate vs. shared mechanisms in
affective disorders and epilepsy . Neuropsychobiology , 38(3), p. 167-80.
[39] Morrell, F. (1989). Varieties of human secondary epileptogenesis. J Clin Neurophysiol ,
6(3), p. 227-75.
[40] Bender, R.A., and Baram, T.Z. (2007). Epileptogenesis in the developing brain: what
can we learn from animal models? Epilepsia , 48 Suppl 5, p. 2-6.
[41] Racine, R., Okujava, V., and Chipashvili, S. (1972). Modification of seizure activity by
electrical stimulation. 3. Mechanisms . Electroencephalogr Clin Neurophysiol , 32(3), p.
295-9.
[42] Racine, R.J. (1972). Modification of seizure activity by electrical stimulation. II. Motor
seizure. Electroencephalogr Clin Neurophysiol , 32(3), p. 281-94.
[43] Racine, R.J. (1972). Modification of seizure activity by electrical stimulation. I. After-
discharge threshold. Electroencephalogr Clin Neurophysiol , 32(3), p. 269-79.
[44] Kandel, E., Schwartz, J.H., and Jessell, T.M. (2000). Seizures and Epilepsy , in
Principles of Neural Science , McGraw-Hill: New York. p. 918.
[45] Wong, R.K.S., Traub, R.D., and Miles, R. (1984). Epileptogenic Mechanisms as
Revealed by Studies of the Hipppcampal Slice , in Electrophysiology of Epilepsy , P.A.
Schwartzkroin and H.V. Wheal, Editors. Academic Press: London. p. 253-275.
[46] Schubert, M. et al. (2005). Kindling-induced changes in plasticity of the rat amygdala
and hippocampus. Learn Mem , 12(5), p. 520-6.
[47] Palizvan, M.R., Fathollahi, Y., and Semnanian, S. (2005). Epileptogenic insult causes a
shift in the form of long-term potentiation expression . Neuroscience , 134(2), p. 415-23.
[48] Adams, B. et al. (1997). Long-term potentiation trains induce mossy fiber sprouting.
Brain Res , 775(1-2), p. 193-7.
[49] Hassan, H. et al. (2000). Repeated long-term potentiation induces mossy fibre sprouting
and changes the sensibility of hippocampal granule cells to subconvulsive doses of
pentylenetetrazol. Eur J Neurosci , 12(4), p. 1509-15.
[50] Escobar, M.L. et al. (1997). Opioid receptor modulation of mossy fiber synaptogenesis:
independence from long-term potentiation . Brain Res, 751(2), p. 330-5.
[51] Grover, L.M., and Teyler, T.J. (1990). Two components of long-term potentiation
induced by different patterns of afferent activation. Nature , 347(6292), p. 477-9.
[52] Hagihara, H. et al. (2005). Tonic-clonic seizures induce division of neuronal progenitor
cells with concomitant changes in expression of neurotrophic factors in the brain of
pilocarpine-treated mice. Brain Res Mol Brain Res , 139(2), p. 258-66.
[53] Rice, A.C., and DeLorenzo, R.J. (1998). NMDA receptor activation during status
epilepticus is required for the development of epilepsy. Brain Res , 782(1-2), p. 240-7.
[54] Sutula, T. et al. (1996). 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 , 16(22), p. 7398-406.
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