Page 39 - ILAE_Lectures_2015
P. 39
30. Lhatoo SD, Solomon JK, McEvoy AW, Kitchen ND, Shorvon SD, Sander JW. A prospective study of the requirement
for and the provision of epilepsy surgery in the United Kingdom. Epilepsia 2003;44:673-676.
31. Blumcke I, Beck H, Lie AA, Wiestler OD. Molecular neuropathology of human mesial temporal lobe epilepsy. Epilepsy
Res 1999;36:205-223.
32. Bandopadhyay R, Liu JY, Sisodiya SM, Thom M. A comparative study of the dentate gyrus in hippocampal sclerosis
in epilepsy and dementia. Neuropathol Appl Neurobiol 2014;40(2):177-190.
33. Thom M. Hippocampal sclerosis: progress since Sommer. Brain Pathol 2009;19:565-572.
34. Steve TA, Jirsch JD, Gross DW. Quantification of subfield pathology in hippocampal sclerosis: a systematic review
and meta-analysis. Epilepsy Res 2014;108(8):1279-1285.
35. Na M, Ge H, Shi C, et al. Long-term seizure outcome for international consensus classification of hippocampal
sclerosis: a survival analysis. Seizure 2015;25:141-146.
36. Coras R, Pauli E, Li, J, et al. Differential influence of hippocampal subfields to memory formation: insights from
patients with temporal lobe epilepsy. Brain 2014;137(Pt 7):1945-1957.
37. Coras R, Milesi G, Zucca I, et al. 7T MRI features in control human hippocampus and hippocampal sclerosis: an ex
vivo study with histologic correlations. Epilepsia 2014;55(12):2003-2016.
38. Thom, M., Review: Hippocampal sclerosis in epilepsy: a neuropathology review. Neuropathol Appl Neurobiol
2014;40(5):520-543.
39. Houser CR. Granule cell dispersion in the dentate gyrus of humans with temporal lobe epilepsy. Brain Res
1990;535:195-204.
40. Lurton D, El Bahh B, Sundstrom L, Rougier A. Granule cell dispersion is correlated with early epileptic events in
human temporal lobe epilepsy. J Neurol Sci 1998;154:133-136.
41. Lurton D, Sundstrom L, Brana C, Bloch B, Rougier A. Possible mechanisms inducing granule cell dispersion in humans
with temporal lobe epilepsy. Epilepsy Res 1997;26:351-361.
42. Wieser HG. ILAE Commission Report. Mesial temporal lobe epilepsy with hippocampal sclerosis. Epilepsia
2004;45:695-714.
43. Thom M, Sisodiya SM, Beckett A, et al. Cytoarchitectural abnormalities in hippocampal sclerosis. J Neuropathol Exp
Neurol 2002;61:510-519.
44. Shapiro LA, Ribak CE. Integration of newly born dentate granule cells into adult brains: hypotheses based on normal
and epileptic rodents. Brain Res Brain Res Rev 2005;48:43-56.
45. El Bahh B, Lespinet V, Lurton D, Coussemacq M, Le Gal La Salle G, Rougier A. Correlations between granule cell
dispersion, mossy fiber sprouting, and hippocampal cell loss in temporal lobe epilepsy. Epilepsia 1999;40:1393-1401.
46. Blumcke I, Kistner I, Clusmann H, et al. Towards a clinico-pathological classification of granule cell dispersion in
human mesial temporal lobe epilepsies. Acta Neuropathol 2009;117:535-544.
47. Thom M, Liagkouras I, Elliot KJ, et al. Reliability of patterns of hippocampal sclerosis as predictors of postsurgical
outcome. Epilepsia 2010;51:1801-1808.
48. Suzuki F, Heinrich C, Boehrer A, et al. Glutamate receptor antagonists and benzodiazepine inhibit the progression of
granule cell dispersion in a mouse model of mesial temporal lobe epilepsy. Epilepsia 2005;46:193-202.
49. Frotscher M, Haas CA, Forster E. Reelin controls granule cell migration in the dentate gyrus by acting on the radial
glial scaffold. Cereb Cortex 2003;13:634-640.
50. Haas CA, Frotscher M. Reelin deficiency causes granule cell dispersion in epilepsy. Exp Brain Res 2010;200:141-149.
51. Ma X, Xing Z, Wang Z, et al. Identification and comparative analysis of differentially expressed miRNAs in leaves of
two wheat (Triticum aestivum L.) genotypes during dehydration stress. BMC Plant Biol 2015;15:21-35.
52. Cavazos JE, Zhang P, Qazi R, Sutula TP. Ultrastructural features of sprouted mossy fiber synapses in kindled and
kainic acid-treated rats. J Comp Neurol 2003;458:272-292.
53. Thom M, Martinian L, Catarino C, et al. Bilateral reorganization of the dentate gyrus in hippocampal sclerosis: a
postmortem study. Neurology 2009;73:1033-1040.
54. Crevecoeur J, Kaminski RM, Rogister B, et al., Expression pattern of synaptic vesicle protein 2 (SV2) isoforms in
patients with temporal lobe epilepsy and hippocampal sclerosis. Neuropathol Appl Neurobiol, 2014. 40(2): p. 191-204.
55. Yilmazer-Hanke DM, Wolf HK, Schramm J, Elger CE, Wiestler OD, Blumcke I. Subregional pathology of the
amygdala complex and entorhinal region in surgical specimens from patients with pharmacoresistant temporal lobe
epilepsy. J Neuropathol Exp Neurol 2000;59:907-920.
56. Niittykoski M, Nissinen J, Penttonen M, Pitkanen A. Electrophysiologic changes in the lateral and basal amygdaloid
nuclei in temporal lobe epilepsy: an in vitro study in epileptic rats. Neuroscience 2004;124:269-281.
57. Bernasconi N, Andermann F, Arnold DL, Bernasconi A. Entorhinal cortex MRI assessment in temporal, extratemporal,
and idiopathic generalized epilepsy. Epilepsia 2003;44:1070-1074.
58. de Guzman P, D'Antuono M, Avoli M. Initiation of electrographic seizures by neuronal networks in entorhinal and
perirhinal cortices in vitro. Neuroscience 2004;123:875-886.
59. Du F, Whetsell WO, Jr., Abou-Khalil B, Blumenkopf B, Lothman EW, Schwarcz R. Preferential neuronal loss in layer
III of the entorhinal cortex in patients with temporal lobe epilepsy. Epilepsy Res 1993;16:223-233.
60. Du F, Eid T, Lothman EW, Kohler C, Schwarcz R. Preferential neuronal loss in layer III of the medial entorhinal cortex
in rat models of temporal lobe epilepsy. J Neurosci 1995;15:6301-6313.
61. Dawodu S, Thom M. Quantitative neuropathology of the entorhinal cortex region in patients with hippocampal sclerosis
and temporal lobe epilepsy. Epilepsia 2005;46:23-30.
62. Thom M, Eriksson S, Martinian L, et al. Temporal lobe sclerosis associated with hippocampal sclerosis in temporal
lobe epilepsy: neuropathological features. J Neuropathol Exp Neurol 2009;68:928-938.