Heterozygous expression of a Kcnt1 gain-of-function variant has differential effects on SST- and PV-expressing cortical GABAergic neurons
Shore, A. N.; Qunies, A. M.; Spitznagel, B. D.; Weaver, C. D.; Emmitte, K.; Frankel, W.; Weston, M. C.
Show abstract
More than twenty recurrent missense gain-of-function (GOF) mutations have been identified in the sodium-activated potassium (KNa) channel gene KCNT1 in patients with severe developmental and epileptic encephalopathies (DEEs), most of which are resistant to current therapies. Defining the neuron types most vulnerable to KCNT1 GOF will advance our understanding of disease mechanisms and provide refined targets for precision therapy efforts. Here, we assessed the effects of heterozygous expression of a Kcnt1 GOF variant (Y777H) on KNa currents and neuronal physiology among cortical glutamatergic and GABAergic neurons in mice, including those expressing vasoactive intestinal polypeptide (VIP), somatostatin (SST), and parvalbumin (PV), to identify and model the pathogenic mechanisms of autosomal dominant KCNT1 GOF variants in DEEs. Although the Kcnt1-Y777H variant had no effects on glutamatergic or VIP neuron function, it increased subthreshold KNa currents in both SST and PV neurons but with opposite effects on neuronal output; SST neurons became hypoexcitable with a higher rheobase current and lower action potential (AP) firing frequency, whereas PV neurons became hyperexcitable with a lower rheobase current and higher AP firing frequency. Further neurophysiological and computational modeling experiments showed that the differential effects of the Y777H variant on SST and PV neurons are not likely due to inherent differences in these neuron types, but to an increased persistent sodium current in PV, but not SST, neurons. The Y777H variant also increased excitatory input onto, and chemical and electrical synaptic connectivity between, SST neurons. Together, these data suggest differential pathogenic mechanisms, both direct and compensatory, contribute to disease phenotypes, and provide a salient example of how a pathogenic ion channel variant can cause opposite functional effects in closely related neuron subtypes due to interactions with other ionic conductances.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Somatostatin-positive Interneurons Contribute to Seizures in SCN8A Epileptic Encephalopathy 98%
- Complex synaptic and intrinsic interactions disrupt input/output functions in the hippocampus of Scn1b knockout mice 98%
- Axon initial segment GABA inhibits action potential generation throughout periadolescent development 97%
Similar papers in this journal
- Robust perisomatic GABAergic self-innervation inhibits basket cells in the human and mouse supragranular neocortex 97%
- Functional specification of CCK+ interneurons by alternative isoforms of Kv4.3 auxiliary subunits 97%
- BK channel properties correlate with neurobehavioral severity in three KCNMA1-linked channelopathy mouse models 97%
Similar papers in this journal
- Cell-type specificity of neuronal excitability and morphology in the central amygdala 96%
- Impaired reliability and precision of spiking in adults but not juveniles in a mouse model of Fragile X Syndrome 96%
- Progressive circuit hyperexcitability in mouse neocortical slice cultures with increasing duration of activity silencing 95%
Similar papers in this journal
- Impaired dendritic spike generation in the Fragile X prefrontal cortex is due to loss of dendritic sodium channels 97%
- Cation-chloride cotransporters and the polarity of GABA signaling in mouse hippocampal parvalbumin interneurons 97%
- GluN2C/D-containing NMDA receptors enhance temporal summation and increase sound-evoked and spontaneous firing in the inferior colliculus 97%
Similar papers in this journal
- Paradoxical hyperexcitability from NaV1.2 sodium channel loss in neocortical pyramidal cells 97%
- Disease-causing Slack potassium channel mutations produce opposite effects on excitability of excitatory and inhibitory neurons 97%
- Developmentally-regulated impairment of parvalbumin interneuron synaptic transmission in an experimental model of Dravet syndrome 96%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.