Cellular and behavioral effects of altered NaV1.2 sodium channel ion permeability in Scn2a K1422E mice

Author:

Echevarria-Cooper Dennis M12,Hawkins Nicole A1,Misra Sunita N134,Huffman Alexandra M1,Thaxton Tyler1,Thompson Christopher H1,Ben-Shalom Roy5,Nelson Andrew D6,Lipkin Anna M67,George Jr Alfred L12,Bender Kevin J6,Kearney Jennifer A12ORCID

Affiliation:

1. Department of Pharmacology , Northwestern University Feinberg School of Medicine, Chicago, IL 60611 , USA

2. Northwestern University Interdepartmental Neuroscience Program , Northwestern University, Chicago, IL 60611 , USA

3. Department of Pediatrics , Northwestern University Feinberg School of Medicine, Chicago, IL 60611 , USA

4. Ann & Robert H. Lurie Children’s Hospital of Chicago , Chicago, IL 60611 , USA

5. Mind Institute and Department of Neurology , University of California, Davis, Sacramento, CA 95817 , USA

6. Department of Neurology , Kavli Institute for Fundamental Neuroscience, Weill Institute for Neurosciences, University of California, San Francisco, CA 94158 , USA

7. Neuroscience Graduate Program , University of California, San Francisco, CA 94158 , USA

Abstract

Abstract Genetic variants in SCN2A, encoding the NaV1.2 voltage-gated sodium channel, are associated with a range of neurodevelopmental disorders with overlapping phenotypes. Some variants fit into a framework wherein gain-of-function missense variants that increase neuronal excitability lead to developmental and epileptic encephalopathy, while loss-of-function variants that reduce neuronal excitability lead to intellectual disability and/or autism spectrum disorder (ASD) with or without co-morbid seizures. One unique case less easily classified using this framework is the de novo missense variant SCN2A-p.K1422E, associated with infant-onset developmental delay, infantile spasms and features of ASD. Prior structure–function studies demonstrated that K1422E substitution alters ion selectivity of NaV1.2, conferring Ca2+ permeability, lowering overall conductance and conferring resistance to tetrodotoxin (TTX). Based on heterologous expression of K1422E, we developed a compartmental neuron model incorporating variant channels that predicted reductions in peak action potential (AP) speed. We generated Scn2aK1422E mice and characterized effects on neurons and neurological/neurobehavioral phenotypes. Cultured cortical neurons from heterozygous Scn2aK1422E/+ mice exhibited lower current density with a TTX-resistant component and reversal potential consistent with mixed ion permeation. Recordings from Scn2aK1442E/+ cortical slices demonstrated impaired AP initiation and larger Ca2+ transients at the axon initial segment during the rising phase of the AP, suggesting complex effects on channel function. Scn2aK1422E/+ mice exhibited rare spontaneous seizures, interictal electroencephalogram abnormalities, altered induced seizure thresholds, reduced anxiety-like behavior and alterations in olfactory-guided social behavior. Overall, Scn2aK1422E/+ mice present with phenotypes similar yet distinct from other Scn2a models, consistent with complex effects of K1422E on NaV1.2 channel function.

Funder

Pfizer, Inc.

Praxis Precision Medicines, Inc.

Tevard Biosciences, Inc.

FamileSCN2A

Epilepsy Foundation of Greater Chicago

National Science Foundation

Simons Foundation Autism Research Initiative

National Institutes of Health

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology,General Medicine

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