Epilepsy and sudden unexpected death in epilepsy in a mouse model of human <i>SCN1B</i>-linked developmental and epileptic encephalopathy

Chunling Chen, Julie Ziobro, Larissa Robinson‐Cooper, Samantha L. Hodges, Yan Chen, Nnamdi Edokobi, Luis F. Lopez‐Santiago, Karl Habig, Chloe Moore, Joe Minton,

Brain Communications · 2023 · 14 citations · 49 references

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Abstract

Voltage-gated sodium channel β1 subunits are essential proteins that regulate excitability. They modulate sodium and potassium currents, function as cell adhesion molecules and regulate gene transcription following regulated intramembrane proteolysis. Biallelic pathogenic variants in <i>SCN1B</i>, encoding β1, are linked to developmental and epileptic encephalopathy 52, with clinical features overlapping Dravet syndrome. A recessive variant, <i>SCN1B-</i>c.265C>T, predicting <i>SCN1B</i>-p.R89C, was homozygous in two children of a non-consanguineous family. One child was diagnosed with Dravet syndrome, while the other had a milder phenotype. We identified an unrelated biallelic <i>SCN1B-</i>c.265C>T patient with a clinically more severe phenotype than Dravet syndrome. We used CRISPR/Cas9 to knock-in <i>SCN1B-</i>p.R89C to the mouse <i>Scn1b</i> locus (<i>Scn1b<sup>R89/C89</sup></i>). We then rederived the line on the C57BL/6J background to allow comparisons between <i>Scn1b<sup>R89/R89</sup></i> and <i>Scn1b<sup>C89/C89</sup></i> littermates with <i>Scn1b<sup>+/+</sup></i> and <i>Scn1b<sup>-/-</sup></i> mice, which are congenic on C57BL/6J, to determine whether the <i>SCN1B-</i>c.265C>T variant results in loss-of-function. <i>Scn1b<sup>C89/C89</sup></i> mice have normal body weights and ∼20% premature mortality, compared with severely reduced body weight and 100% mortality in <i>Scn1b<sup>-/-</sup></i> mice. β1-p.R89C polypeptides are expressed in brain at comparable levels to wild type. In heterologous cells, β1-p.R89C localizes to the plasma membrane and undergoes regulated intramembrane proteolysis similar to wild type. Heterologous expression of β1-p.R89C results in sodium channel α subunit subtype specific effects on sodium current. mRNA abundance of <i>Scn2a</i>, <i>Scn3a</i>, <i>Scn5a</i> and <i>Scn1b</i> was increased in <i>Scn1b<sup>C89/C89</sup></i> somatosensory cortex, with no changes in <i>Scn1a</i>. In contrast, <i>Scn1b<sup>-/-</sup></i> mouse somatosensory cortex is haploinsufficient for <i>Scn1a</i>, suggesting an additive mechanism for the severity of the null model via disrupted regulation of another Dravet syndrome gene. <i>Scn1b<sup>C89/C89</sup></i> mice are more susceptible to hyperthermia-induced seizures at post-natal Day 15 compared with <i>Scn1b<sup>R89/R89</sup></i> littermates. EEG recordings detected epileptic discharges in young adult <i>Scn1b<sup>C89/C89</sup></i> mice that coincided with convulsive seizures and myoclonic jerks. We compared seizure frequency and duration in a subset of adult <i>Scn1b<sup>C89/C89</sup></i> mice that had been exposed to hyperthermia at post-natal Day 15 versus a subset that were not hyperthermia exposed. No differences in spontaneous seizures were detected between groups. For both groups, the spontaneous seizure pattern was diurnal, occurring with higher frequency during the dark cycle. This work suggests that the <i>SCN1B-</i>c.265C>T variant does not result in complete loss-of-function. <i>Scn1b<sup>C89/C89</sup></i> mice more accurately model <i>SCN1B</i>-linked variants with incomplete loss-of-function compared with <i>Scn1b<sup>-/-</sup></i> mice, which model complete loss-of-function, and thus add to our understanding of disease mechanisms as well as our ability to develop new therapeutic strategies.

References

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