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.

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.