Blocking ERK-DAPK1 Axis Attenuates Glutamate Excitotoxicity in Epilepsy
Chen-Ling Gan1,2, Yulian Zou3, Dongmei Chen1
1Fujian Key Laboratory of Translational Research in Cancer and Neurodegenerative Diseases, Institute for Translational Medicine, School of Basic Medical Sciences, Fujian Medical University, Fuzhou 350122, China.
Abstract:
Glutamate excitotoxicity induces neuronal cell death during epileptic seizures. Death-associated protein kinase 1 (DAPK1) expression is highly increased in the brains of epilepsy patients; however, the underlying mechanisms by which DAPK1 influences neuronal injury and its therapeutic effect on glutamate excitotoxicity have not been determined. We assessed multiple electroencephalograms and seizure grades and performed biochemical and cell death analyses with cellular and animal models. We applied small molecules and peptides and knocked out and mutated genes to evaluate the therapeutic efficacy of kainic acid (KA), an analog of glutamate-induced neuronal damage. KA administration increased DAPK1 activity by promoting its phosphorylation by activated extracellular signal-regulated kinase (ERK). DAPK1 activation increased seizure severity and neuronal cell death in mice. Selective ERK antagonist treatment, DAPK1 gene ablation, and uncoupling of DAPK1 and ERK peptides led to potent anti-seizure and anti-apoptotic effects in vitro and in vivo. Moreover, a DAPK1 phosphorylation-deficient mutant alleviated glutamate-induced neuronal apoptosis. These results provide novel insight into the pathogenesis of epilepsy and indicate that targeting DAPK1 may be a potential therapeutic strategy for treating epilepsy.
Insights
Targeting Death-associated protein kinase 1 (DAPK1) may treat epilepsy. Blocking DAPK1 or its interaction with extracellular signal-regulated kinase (ERK) reduces seizure severity and neuronal death caused by glutamate excitotoxicity.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Glutamate excitotoxicity causes neuronal cell death in epilepsy.
- Death-associated protein kinase 1 (DAPK1) expression is elevated in epilepsy patients' brains.
- Mechanisms of DAPK1 in neuronal injury and its therapeutic potential remain unclear.
Purpose of the Study:
- Investigate DAPK1's role in glutamate excitotoxicity and epilepsy.
- Determine the therapeutic efficacy of targeting DAPK1 in epilepsy models.
Main Methods:
- Utilized cellular and animal models of epilepsy induced by kainic acid (KA).
- Assessed electroencephalograms, seizure grades, and performed biochemical and cell death analyses.
- Employed small molecules, peptides, gene knockout, and gene mutation strategies.
Main Results:
- KA administration increased DAPK1 activity via ERK phosphorylation.
- Activated DAPK1 exacerbated seizure severity and neuronal death.
- ERK antagonism, DAPK1 ablation, and DAPK1-ERK uncoupling demonstrated anti-seizure and anti-apoptotic effects.
- A DAPK1 phosphorylation-deficient mutant reduced glutamate-induced neuronal apoptosis.
Conclusions:
- DAPK1 activation by ERK contributes to epilepsy pathogenesis.
- Targeting DAPK1 presents a potential therapeutic strategy for epilepsy treatment.
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