Related Experiment Video
Updated: Jan 25, 2026

In Vivo Chronic Two-Photon Imaging of Microglia in the Mouse Hippocampus
Published on: July 6, 2022
Electroconvulsive Shock Enhances Responsive Motility and Purinergic Currents in Microglia in the Mouse Hippocampus
Alberto Sepulveda-Rodriguez1,2, Pinggan Li1,3, Tahiyana Khan1,2
1Department of Pharmacology and Physiology, Georgetown University, Washington, DC 20007.
Abstract:
Microglia are in a privileged position to both affect and be affected by neuroinflammation, neuronal activity and injury, which are all hallmarks of seizures and the epilepsies. Hippocampal microglia become activated after prolonged, damaging seizures known as status epilepticus (SE). However, since SE causes both hyperactivity and injury of neurons, the mechanisms triggering this activation remain unclear, as does the relevance of the microglial activation to the ensuing epileptogenic processes. In this study, we use electroconvulsive shock (ECS) to study the effect of neuronal hyperactivity without neuronal degeneration on mouse hippocampal microglia. Unlike SE, ECS did not alter hippocampal CA1 microglial density, morphology, or baseline motility. In contrast, both ECS and SE produced a similar increase in ATP-directed microglial process motility in acute slices, and similarly upregulated expression of the chemokine C-C motif chemokine ligand 2 (CCL2). Whole-cell patch-clamp recordings of hippocampal CA1sr microglia showed that ECS enhanced purinergic currents mediated by P2X7 receptors in the absence of changes in passive properties or voltage-gated currents, or changes in receptor expression. This differs from previously described alterations in intrinsic characteristics which coincided with enhanced purinergic currents following SE. These ECS-induced effects point to a "seizure signature" in hippocampal microglia characterized by altered purinergic signaling. These data demonstrate that ictal activity per se can drive alterations in microglial physiology without neuronal injury. These physiological changes, which up until now have been associated with prolonged and damaging seizures, are of added interest as they may be relevant to electroconvulsive therapy (ECT), which remains a gold-standard treatment for depression.
Insights
Neuronal hyperactivity during seizures, even without injury, alters microglial function. This suggests a "seizure signature" in microglia relevant to electroconvulsive therapy (ECT).
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia, the brain's immune cells, are implicated in epilepsy and neuroinflammation.
- Status epilepticus (SE) activates microglia, but it's unclear if this is due to neuronal hyperactivity or injury.
Purpose of the Study:
- To investigate microglial responses to neuronal hyperactivity independent of neuronal injury.
- To understand the mechanisms of microglial activation during seizures and their relevance to electroconvulsive therapy (ECT).
Main Methods:
- Used electroconvulsive shock (ECS) in mice to induce neuronal hyperactivity without cell death.
- Analyzed microglial density, morphology, motility, and purinergic signaling in hippocampal slices.
- Performed patch-clamp recordings on CA1 pyramidal layer microglia.
Main Results:
- ECS did not change microglial density, morphology, or baseline motility.
- Both ECS and SE increased ATP-directed microglial process motility and CCL2 expression.
- ECS enhanced P2X7 receptor-mediated purinergic currents in microglia without altering passive properties or receptor expression.
Conclusions:
- Ictal activity alone, without neuronal injury, can alter hippocampal microglial physiology.
- These ECS-induced changes suggest a distinct microglial
Related Concept Videos
Electroconvulsive Therapy
Shock Waves
When the source's speed approaches the speed of sound, constructive interference between successive wavefronts emitted by the source occurs immediately behind it. Initially, scientists believed that this constructive interference would result in such high...
Role of Hippocampus in Memory
Gastric Motility
Peristaltic Waves and Chyme Formation
Upon food entry, the stomach initiates...
Electrical Current
Gastrointestinal Motility Disorders

