Abstract
Metabolism regulates neuronal activity and modulates the occurrence of epileptic seizures. Here, using two rodent models of absence epilepsy, we show that hypoglycaemia increases the occurrence of spike-wave seizures. We then show that selectively disrupting glycolysis in the thalamus, a structure implicated in absence epilepsy, is sufficient to increase spike-wave seizures. We propose that activation of thalamic AMP-Activated protein kinase, a sensor of cellular energetic stress and potentiator of metabotropic GABAB-receptor function, is a significant driver of hypoglycaemia-induced spike-wave seizures. We show that AMP-Activated protein kinase augments postsynaptic GABAB-receptor-mediated currents in thalamocortical neurons and strengthens epileptiform network activity evoked in thalamic brain slices. Selective thalamic AMP-Activated protein kinase activation also increases spike-wave seizures. Finally, systemic administration of metformin, an AMP-Activated protein kinase agonist and common diabetes treatment, profoundly increased spike-wave seizures. These results advance the decades-old observation that glucose metabolism regulates thalamocortical circuit excitability by demonstrating that AMP-Activated protein kinase and GABAB-receptor cooperativity is sufficient to provoke spike-wave seizures.
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Salvati, K. A., Ritger, M. L., Davoudian, P. A., O’Dell, F., Wyskiel, D. R., Souza, G. M. P. R., … Beenhakker, M. P. (2022). AMPK-mediated potentiation of GABAergic signalling drives hypoglycaemia-provoked spike-wave seizures. Brain, 145(7), 2332–2346. https://doi.org/10.1093/brain/awac037
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