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PMID: 16393152 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, U.S. Gov't, Non-P.H.S.

Epileptogenesis and reduced inward rectifier potassium current in tuberous sclerosis complex-1-deficient astrocytes.

Epilepsia ·Vol. 46 ·No. 12 ·2005-12-00 ·Pages 1871-80

Jansen LA, Uhlmann EJ, Crino PB, Gutmann DH, Wong M

Abstract

Individuals with tuberous sclerosis complex (TSC) frequently have intractable epilepsy. To gain insights into mechanisms of epileptogenesis in TSC, we previously developed a mouse model of TSC with conditional inactivation of the Tsc1 gene in glia (Tsc1(GFAP)CKO mice). These mice develop progressive seizures, suggesting that glial dysfunction may be involved in epileptogenesis in TSC. Here, we investigated the hypothesis that impairment of potassium uptake through astrocyte inward rectifier potassium (Kir) channels may contribute to epileptogenesis in Tsc1(GFAP)CKO mice. Kir channel function and expression were examined in cultured Tsc1-deficient astrocytes. Kir mRNA expression was analyzed in astrocytes microdissected from neocortical sections of Tsc1(GFAP)CKO mice. Physiological assays of astrocyte Kir currents and susceptibility to epileptiform activity induced by increased extracellular potassium were further studied in situ in hippocampal slices. Cultured Tsc1-deficient astrocytes exhibited reduced Kir currents and decreased expression of specific Kir channel protein subunits, Kir2.1 and Kir6.1. mRNA expression of the same Kir subunits also was reduced in astrocytes from neocortex of Tsc1(GFAP)CKO mice. By using pharmacologic modulators of signalling pathways implicated in TSC, we showed that the impairment in Kir channel function was not affected by rapamycin inhibition of the mTOR/S6K pathway, but was reversed by decreasing CDK2 activity with roscovitine or retinoic acid. Last, hippocampal slices from Tsc1(GFAP)CKO mice exhibited decreased astrocytic Kir currents, as well as increased susceptibility to potassium-induced epileptiform activity. Impaired extracellular potassium uptake by astrocytes through Kir channels may contribute to neuronal hyperexcitability and epileptogenesis in a mouse model of TSC.

MeSH Terms
Animals Astrocytes/metabolism Cells, Cultured Cyclin-Dependent Kinase 2/metabolism,physiology Epilepsy/genetics,metabolism,physiopathology Extracellular Space/metabolism Genes, Tumor Suppressor/physiology Glutamic Acid/metabolism,physiology Hippocampus/cytology,metabolism Mice Mice, Knockout Potassium/metabolism,physiology Potassium Channels, Inwardly Rectifying/genetics,metabolism,physiology Tuberous Sclerosis/genetics,metabolism,physiopathology Tuberous Sclerosis Complex 1 Protein Tumor Suppressor Proteins/metabolism,physiology
Chemicals
Potassium Channels, Inwardly Rectifying TSC1 protein, human Tsc1 protein, mouse Tuberous Sclerosis Complex 1 Protein Tumor Suppressor Proteins Glutamic Acid CDK2 protein, human Cyclin-Dependent Kinase 2 Potassium
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Jansen Laura A
Department of Neurology, Washington University School of Medicine, St Louis, Missouri 63110, USA.
Uhlmann Erik J
Crino Peter B
Gutmann David H
Wong Michael
Article Info
Journal
Epilepsia
Abbr.
Epilepsia
ISSN
0013-9580
Published
2005-12-00
Pages
1871-80
Language
English
Region
United States
NLM ID
2983306R
Subset
IM
Grants
NINDS NIH HHS · 1K02NS045583-01 · United States
NINDS NIH HHS · F32-NS046843 · United States
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