Human iPSC-derived microglia sense and dampen hyperexcitability of cortical neurons carrying the epilepsy-associated
Zhefu Que1,2, Maria I Olivero-Acosta1,2, Ian Chen1,2
1Borch Department of Medicinal Chemistry and Molecular Pharmacology, College of Pharmacy, Purdue University, West Lafayette, IN 47907.
Abstract:
Neuronal hyperexcitability is a hallmark of seizures. It has been recently shown in rodent models of seizures that microglia, the brain's resident immune cells, can respond to and modulate neuronal excitability. However, how human microglia interacts with human neurons to regulate hyperexcitability mediated by epilepsy-causing genetic mutation found in human patients remains unknown. The SCN2A genetic locus is responsible for encoding the voltage-gated sodium channel Nav1.2, recognized as one of the leading contributors to monogenic epilepsies. Previously, we demonstrated that the recurring Nav1.2-L1342P mutation identified in patients with epilepsy leads to hyperexcitability in a hiPSC-derived cortical neuron model from a male donor. While microglia play an important role in the brain, these cells originate from a different lineage (yolk sac) and thus are not naturally present in hiPSCs-derived neuronal culture. To study how microglia respond to diseased neurons and influence neuronal excitability, we established a co-culture model comprising hiPSC-derived neurons and microglia. We found that microglia display altered morphology with increased branch length and enhanced calcium signal when co-cultured with neurons carrying the Nav1.2-L1342P mutation. Moreover, the presence of microglia significantly lowers the action potential firing of neurons carrying the mutation. Interestingly, we further demonstrated that the current density of sodium channels in neurons carrying the epilepsy-associated mutation was reduced in the presence of microglia. Taken together, our work reveals a critical role of human iPSCs-derived microglia in sensing and dampening hyperexcitability mediated by an epilepsy-causing mutation present in human neurons, highlighting the importance of neuron-microglia interactions in human pathophysiology.
Insights
Human microglia can reduce neuronal hyperexcitability caused by epilepsy-linked SCN2A mutations. This study highlights the crucial role of neuron-microglia interactions in understanding and potentially treating human epilepsy.
Area of Science:
- Neuroscience
- Immunology
- Genetics
Background:
- Neuronal hyperexcitability is a key feature of seizures.
- Microglia, the brain's immune cells, modulate neuronal activity, but their role in human epilepsy involving specific genetic mutations is unclear.
- The SCN2A gene encodes the Nav1.2 sodium channel, and mutations like Nav1.2-L1342P are linked to monogenic epilepsies and neuronal hyperexcitability.
Approach:
- Developed a co-culture model of human induced pluripotent stem cell (hiPSC)-derived neurons and microglia.
- Investigated microglial responses (morphology, calcium signaling) to neurons with the epilepsy-associated Nav1.2-L1342P mutation.
- Assessed the impact of microglia on neuronal excitability, action potential firing, and sodium channel current density.
Key Points:
- Microglia exhibited altered morphology and enhanced calcium signaling when co-cultured with neurons carrying the Nav1.2-L1342P mutation.
- The presence of microglia significantly reduced the action potential firing rate in these hyperexcitable neurons.
- Microglia reduced the sodium channel current density in neurons with the epilepsy-associated mutation.
Conclusions:
- Human hiPSC-derived microglia play a vital role in sensing and mitigating neuronal hyperexcitability driven by epilepsy-causing SCN2A mutations.
- This research underscores the significance of neuron-microglia interactions in the pathophysiology of human epilepsy.
- The findings suggest potential therapeutic strategies targeting microglia for epilepsy treatment.
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