Seizures, behavioral deficits, and adverse drug responses in two new genetic mouse models of HCN1 epileptic encephalopathy

Author:

Merseburg Andrea123ORCID,Kasemir Jacquelin12ORCID,Buss Eric W4ORCID,Leroy Felix4ORCID,Bock Tobias4ORCID,Porro Alessandro5ORCID,Barnett Anastasia4,Tröder Simon E6,Engeland Birgit12ORCID,Stockebrand Malte12ORCID,Moroni Anna5ORCID,Siegelbaum Steven A4ORCID,Isbrandt Dirk123ORCID,Santoro Bina4ORCID

Affiliation:

1. German Center for Neurodegenerative Diseases (DZNE)

2. University of Cologne, Institute for Molecular and Behavioral Neuroscience

3. University of Cologne, Center for Molecular Medicine Cologne

4. Department of Neuroscience, Mortimer B. Zuckerman Mind Brain Behavior Institute, Columbia University

5. Department of Biosciences, University of Milan

6. In vivo Research Facility, Faculty of Medicine and University Hospital Cologne, University of Cologne

Abstract

De novo mutations in voltage- and ligand-gated channels have been associated with an increasing number of cases of developmental and epileptic encephalopathies, which often fail to respond to classic antiseizure medications. Here, we examine two knock-in mouse models replicating de novo sequence variations in the human HCN1 voltage-gated channel gene, p.G391D and p.M153I (Hcn1G380D/+ and Hcn1M142I/+ in mouse), associated with severe drug-resistant neonatal- and childhood-onset epilepsy, respectively. Heterozygous mice from both lines displayed spontaneous generalized tonic–clonic seizures. Animals replicating the p.G391D variant had an overall more severe phenotype, with pronounced alterations in the levels and distribution of HCN1 protein, including disrupted targeting to the axon terminals of basket cell interneurons. In line with clinical reports from patients with pathogenic HCN1 sequence variations, administration of the antiepileptic Na+ channel antagonists lamotrigine and phenytoin resulted in the paradoxical induction of seizures in both mouse lines, consistent with an impairment in inhibitory neuron function. We also show that these variants can render HCN1 channels unresponsive to classic antagonists, indicating the need to screen mutated channels to identify novel compounds with diverse mechanism of action. Our results underscore the necessity of tailoring effective therapies for specific channel gene variants, and how strongly validated animal models may provide an invaluable tool toward reaching this objective.

Funder

National Institutes of Health

Deutsche Forschungsgemeinschaft

Fondazione Telethon

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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