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A role for intracellular zinc in glioma alteration of neuronal chloride equilibrium.


ABSTRACT: Glioma patients commonly suffer from epileptic seizures. However, the mechanisms of glioma-associated epilepsy are far to be completely understood. Using glioma-neurons co-cultures, we found that tumor cells are able to deeply influence neuronal chloride homeostasis, by depolarizing the reversal potential of γ-aminobutyric acid (GABA)-evoked currents (EGABA). EGABA depolarizing shift is due to zinc-dependent reduction of neuronal KCC2 activity and requires glutamate release from glioma cells. Consistently, intracellular zinc loading rapidly depolarizes EGABA in mouse hippocampal neurons, through the Src/Trk pathway and this effect is promptly reverted upon zinc chelation. This study provides a possible molecular mechanism linking glioma invasion to excitation/inhibition imbalance and epileptic seizures, through the zinc-mediated disruption of neuronal chloride homeostasis.

SUBMITTER: Di Angelantonio S 

PROVIDER: S-EPMC4237258 | biostudies-literature | 2014 Oct

REPOSITORIES: biostudies-literature

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A role for intracellular zinc in glioma alteration of neuronal chloride equilibrium.

Di Angelantonio S S   Murana E E   Cocco S S   Scala F F   Bertollini C C   Molinari M G MG   Lauro C C   Bregestovski P P   Limatola C C   Ragozzino D D  

Cell death & disease 20141030


Glioma patients commonly suffer from epileptic seizures. However, the mechanisms of glioma-associated epilepsy are far to be completely understood. Using glioma-neurons co-cultures, we found that tumor cells are able to deeply influence neuronal chloride homeostasis, by depolarizing the reversal potential of γ-aminobutyric acid (GABA)-evoked currents (EGABA). EGABA depolarizing shift is due to zinc-dependent reduction of neuronal KCC2 activity and requires glutamate release from glioma cells. Co  ...[more]