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Parvalbumin interneuron impairment causes synaptic transmission deficits and seizures in SCN8A developmental and epileptic encephalopathy
Raquel M. Miralles, Alexis R. Boscia, Shrinidhi Kittur, Jessica C. Hanflink, Payal S. Panchal, Matthew S. Yorek, Tyler C. J. Deutsch, Caeley M. Reever, Shreya R. Vundela, Eric R. Wengert, Manoj K. Patel
Raquel M. Miralles, Alexis R. Boscia, Shrinidhi Kittur, Jessica C. Hanflink, Payal S. Panchal, Matthew S. Yorek, Tyler C. J. Deutsch, Caeley M. Reever, Shreya R. Vundela, Eric R. Wengert, Manoj K. Patel
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Research Article Neuroscience

Parvalbumin interneuron impairment causes synaptic transmission deficits and seizures in SCN8A developmental and epileptic encephalopathy

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Abstract

SCN8A developmental and epileptic encephalopathy (DEE) is a severe epilepsy syndrome resulting from mutations in the voltage-gated sodium channel Nav1.6, encoded by the gene SCN8A. Nav1.6 is expressed in excitatory and inhibitory neurons, yet previous studies primarily focus on how SCN8A mutations affect excitatory neurons, with limited studies on the importance of inhibitory interneurons. Parvalbumin (PV) interneurons are a prominent inhibitory interneuron subtype that expresses Nav1.6. To assess PV interneuron function within SCN8A DEE, we used 2 mouse models harboring patient-derived SCN8A gain-of-function variants, Scn8aD/+, where the SCN8A variant N1768D is expressed globally, and Scn8aW/+-PV, where the SCN8A variant R1872W is selectively expressed in PV interneurons. Expression of the R1872W SCN8A variant selectively in PV interneurons led to development of spontaneous seizures and seizure-induced death. Electrophysiology studies showed that Scn8aD/+ and Scn8aW/+-PV interneurons were susceptible to depolarization block and exhibited increased persistent sodium current. Evaluation of synaptic connections between PV interneurons and pyramidal cells showed synaptic transmission deficits in Scn8aD/+ and Scn8aW/+-PV interneurons. Together, our findings indicate that PV interneuron failure via depolarization block along with inhibitory synaptic impairment likely elicits an overall inhibitory reduction in SCN8A DEE, leading to unchecked excitation and ultimately resulting in seizures and seizure-induced death.

Authors

Raquel M. Miralles, Alexis R. Boscia, Shrinidhi Kittur, Jessica C. Hanflink, Payal S. Panchal, Matthew S. Yorek, Tyler C. J. Deutsch, Caeley M. Reever, Shreya R. Vundela, Eric R. Wengert, Manoj K. Patel

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Figure 6

Increased synaptic transmission failure and synaptic latency in Scn8a mutant mice.

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Increased synaptic transmission failure and synaptic latency in Scn8a mu...
(A) Image of dual whole-cell recording of a synaptically connected PV interneuron and pyramidal cell pair. (B) Example traces from a PV interneuron (gray) and synaptically coupled pyramidal cell (PC; black). (C) Proportion of successfully patched PV:PC pairs that were synaptically connected did not differ between WT (49 pairs from 13 mice), Scn8aD/+ (40 pairs from 8 mice), and Scn8aW/+-PV (54 pairs from 9 mice) in adult mice. (D–F) Example of presynaptic firing and evoked uIPSCs in WT (D; black), Scn8aD/+ (E; red), and Scn8aW/+-PV (F; blue) connected pairs at 5 Hz, 10 Hz, 20 Hz, 40 Hz, 80 Hz, and 120 Hz. Purple arrows denote uIPSC failures in the postsynaptic neuron. (G–L) Summary data for failure rates of evoked uIPSCs at various frequencies. In Scn8aD/+ connected pairs (n = 7, 5 mice), uIPSC failure rate is not significantly different from WT (n = 4, 3 mice) at 5, 10, 20, or 40 Hz (P > 0.05, G–J) but is significantly higher at PV interneuron firing frequencies of 80 and 120 Hz (*, P < 0.05, K and L). uIPSC failure rate in Scn8aW/+-PV pairs (n = 6, 5 mice) is significantly higher than WT at 5, 10, 20, 80, and 120 Hz (*, P < 0.05, G–I, K, and L) but did not significantly differ at 40 Hz (P < 0.05, J, 1-way ANOVA with Dunnett’s multiple-comparison test). (M and N) Example traces illustrating synaptic latency in WT, Scn8aD/+, and Scn8aW/+-PV, measured from the peak of the presynaptic AP to the onset of the evoked uIPSC (M). Gray dotted lines indicate this latency in WT. Latency is increased in Scn8aD/+ and Scn8aW/+-PV mice (N, 1-way ANOVA with Dunnett’s multiple-comparison test, *, P < 0.05, **, P < 0.01).

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