Dynamics and conditions for inhibitory synaptic current to induce bursting and spreading depolarization in pyramidal

Hongtao Hua1,2, Huaguang Gu3, Kaihua Ma4

  • 1School of Mathematics and Science, Henan Institute of Science and Technology, Xinxiang, 453003, China.

Scientific Reports
|March 15, 2025
PubMed

Insights

Enhanced inhibitory neuron activity can paradoxically trigger mixed-mode bursting (MMB) and spreading depolarization (SD) waves, offering new insights into brain diseases like migraine and seizure.

Area of Science:

  • Computational Neuroscience
  • Neurophysiology
  • Theoretical Biology

Background:

  • Enhanced inhibitory neuron activity is typically used to suppress pyramidal neuron activity for treating brain diseases.
  • Recent experiments show this enhanced inhibition can paradoxically induce mixed-mode bursting (MMB) in pyramidal neurons, linked to migraine and seizure.
  • MMB involves high membrane potential and extracellular potassium ([K+]o), potentially leading to spreading depolarization (SD) waves.

Purpose of the Study:

  • To investigate the dynamics and conditions for MMB and SD waves evoked by enhanced inhibitory synaptic current using a theoretical model.
  • To identify novel mechanisms and thresholds for MMB induction.
  • To explore potential therapeutic strategies by understanding factors that promote or prevent MMB.

Main Methods:

  • Development of a theoretical model of a spiking pyramidal neuron.
  • Analysis of neuron dynamics under varying levels of inhibitory stimulation and extracellular potassium ([K+]o).
  • Utilized coupling and network models to simulate interactions between neurons and assess MMB propagation.

Main Results:

  • A novel negative threshold for MMB induction was identified, occurring at low [K+]o, distinct from the known positive threshold.
  • Enhanced inhibitory stimulation initially silences spiking via saddle-node bifurcation, then triggers MMB by crossing the negative threshold.
  • Coupled and network models confirmed that enhanced inhibitory effects, interneuron spiking, pyramidal neuron spiking, and inhibitory synapse conductance favor MMB, which can induce SD waves.

Conclusions:

  • This study provides a novel theoretical explanation for MMB/SD waves induced by enhanced inhibitory activity.
  • Highlights the counterintuitive role of inhibitory interneurons in potentially driving hyperexcitability.
  • Suggests that reducing specific inhibitory activities or parameters could be a potential therapeutic strategy for MMB-related diseases.

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