Hyperpolarization activated cation channel mediated intrinsic plasticity changes underlie the malleability of with-in cell-type electrophysiological heterogeneity
Chameh, H. M.; Falby, M.; Yang, Y.; Movahed, M.; Arbabi, K.; Sarathy, C.; Tripathy, S. J.; Zhang, L.; Lefebvre, J.; Valiante, T. A.
Show abstract
Within cell-type neuronal electrophysiological, morphological, and transcriptomic heterogeneity is the norm in the brain. Although generally considered a fixed property within cell-types, this heterogeneity is malleable and declines in regions of the human brain that generate seizures. Building off this foundational work we hypothesize that such plasticity of cell-type heterogeneity, specifically its decline, arises from the shared history of neuronal activity that drive intrinsic plasticity mechanisms in a concerted fashion. To explore this hypothesis we study neuronal activity in two model systems: human cortical slice cultures from patients with epilepsy as well as slices from the medial prefrontal cortex (mPFC) and subiculum of rodent kainic acid (KA) model of temporal lobe epilepsy. Biophysical properties and spiking dynamics were characterized using whole-cell patch clamp recordings of layer 2 and layer 3 (L2&3) pyramidal neurons in human slice culture as well as deep layer subicular neurons and layer 5 (L5) mPFC of KA mice. We found a significant decline in biophysical heterogeneity and a reduction in information coding in both the KA and slice culture models. In both these models we found a consistent increase in hyperpolarization-activated cation current (HCN) dependent electrophysiological properties, the blockade of which restored electrophysiological heterogeneity and information coding. Our findings demonstrate that within cell-type heterogeneity is malleable, and despite being a complex distributed network property, can be tuned by a single ionic current. These findings emphasize the plasticity of within cell-type heterogeneity, suggesting the potential for targeted interventions to restore neuronal heterogeneity changes that accompany epilepsy and potentially other neurological and neuropsychiatric diseases.
Matching journals
The top 6 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%
- Attenuated single neuron and network hyperexcitability following microRNA-134 inhibition in mice with drug-resistant temporal lobe epilepsy 97%
- Complex synaptic and intrinsic interactions disrupt input/output functions in the hippocampus of Scn1b knockout mice 97%
Similar papers in this journal
- Corticohippocampal circuit dysfunction in a mouse model of Dravet syndrome 97%
- Optogenetic low-frequency stimulation of dentate granule cells prevents seizure generation in experimental epilepsy 96%
- A transcriptional constraint mechanism limits the homeostatic response to activity deprivation in mammalian neocortex 96%
Similar papers in this journal
- Long-term hippocampal low-frequency stimulation alleviates focal seizures, memory deficits and synaptic pathology in epileptic mice 96%
- Human and Rodent Seizures Demonstrate a Dynamic Interplay with Spreading Depolarizations 96%
- Electrophysiological signatures of a developmental delay in a stem cell model of KCNQ2 developmental and epileptic encephalopathy 95%
Similar papers in this journal
- Bursting mitral cells time the oscillatory coupling between olfactory bulb and entorhinal networks in neonatal mice 96%
- Astrocytic modulation of information processing by layer 5 pyramidal neurons of the mouse visual cortex 95%
- Cation-chloride cotransporters and the polarity of GABA signaling in mouse hippocampal parvalbumin interneurons 95%
Similar papers in this journal
- Excitatory GABAergic signalling is associated with acquired benzodiazepine resistance in status epilepticus 98%
- Kcnq2/Kv7.2 controls the threshold and bihemispheric symmetry of cortical spreading depolarization 96%
- Genetic expression of 4E-BP1 in juvenile mice alleviates mTOR-induced neuronal dysfunction and epilepsy 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.