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PMID: 1655508 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Calbindin-D28K (CaBP) levels and calcium currents in acutely dissociated epileptic neurons.

Experimental brain research ·Vol. 85 ·No. 3 ·1991-00-00 ·Pages 543-51

Köhr G, Lambert CE, Mody I

Abstract

Nerve cells that lack the cytoplasmic Ca2+ binding protein Calbindin-D28K (CaBP) appear to be selectively vulnerable to Ca(2+)-related injury consistent with a postulated intraneuronal Ca(2+)-buffering role of CaBP. We have confirmed the selective loss of CaBP from the dentate gyrus during kindling-induced epilepsy in acutely dissociated granule cells (GCs) from kindled rats. Immunohistochemically stained kindled neurons showed a significant loss of CaBP when compared to controls (p less than 0.001; ANOVA). The Ca(2+)-buffering role of CaBP was assessed in acutely dissociated control and kindled GCs by examining a physiological process highly sensitive to intracellular Ca(2+)-buffering: the Ca(2+)-dependent inactivation of high-voltage activated (HVA or L-type) Ca2+ currents in the absence (or presence) of exogenous Ca(2+)-chelators. Whole-cell patch clamp recordings in kindled GCs demonstrated a markedly enhanced Ca(2+)-dependent inactivation of Ca(2+)-currents. After brief conditioning Ca2+ currents, in the absence of an exogenous intraneuronal Ca(2+)-chelator, subsequent test Ca2+ currents were inactivated by 58.3% in kindled GCs, a significant increase from the 37.4% inactivation observed in control GCs (p less than 0.005; ANOVA). The differential Ca2+ current decay and Ca(2+)-dependent inactivation were prevented in both control and kindled GCs upon loading the neurons with the exogenous Ca(2+)-chelator BAPTA. These experiments demonstrate a high correlation between the loss of CaBP and changes in Ca2+ current inactivation and are consistent with the hypothesis that CaBP contributes to the physiological Ca(2+)-buffering in mammalian neurons.

MeSH Terms
Animals Calbindin 1 Calbindins Calcium Channels/physiology Egtazic Acid/analogs & derivatives,pharmacology Epilepsy/metabolism Hippocampus/physiology Immunohistochemistry In Vitro Techniques Kindling, Neurologic/physiology Male Neurons/physiology Rats Rats, Inbred Strains S100 Calcium Binding Protein G/analysis,immunology
Chemicals
Calb1 protein, rat Calbindin 1 Calbindins Calcium Channels S100 Calcium Binding Protein G Egtazic Acid 1,2-bis(2-aminophenoxy)ethane-N,N,N',N'-tetraacetic acid
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Köhr G
Department of Neurology and Neurological Sciences, Stanford University Medical Center, CA 94305.
Lambert C E
Mody I
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Article Info
Journal
Experimental brain research
Abbr.
Exp Brain Res
ISSN
0014-4819
Published
1991-00-00
Pages
543-51
Language
English
Region
Germany
NLM ID
0043312
Subset
IM
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