Microglial proliferation and monocyte infiltration contribute to microgliosis following status epilepticus
Lijie Feng1,2, Madhuvika Murugan2,3, Dale B Bosco3
1School of Basic Medical Sciences, Anhui Medical University, Hefei, Anhui, China.
Abstract:
Microglial activation has been recognized as a major contributor to inflammation of the epileptic brain. Seizures are commonly accompanied by remarkable microgliosis and loss of neurons. In this study, we utilize the CX3CR1GFP/+ CCR2RFP/+ genetic mouse model, in which CX3CR1+ resident microglia and CCR2+ monocytes are labeled with GFP and RFP, respectively. Using a combination of time-lapse two-photon imaging and whole-cell patch clamp recording, we determined the distinct morphological, dynamic, and electrophysiological characteristics of infiltrated monocytes and resident microglia, and the evolution of their behavior at different time points following kainic acid-induced seizures. Seizure activated microglia presented enlarged somas with less ramified processes, whereas, infiltrated monocytes were smaller, highly motile cells that lacked processes. Moreover, resident microglia, but not infiltrated monocytes, proliferate locally in the hippocampus after seizure. Microglial proliferation was dependent on the colony-stimulating factor 1 receptor (CSF-1R) pathway. Pharmacological inhibition of CSF-1R reduced seizure-induced microglial proliferation, which correlated with attenuation of neuronal death without altering acute seizure behaviors. Taken together, we demonstrated that proliferation of activated resident microglia contributes to neuronal death in the hippocampus via CSF-1R after status epilepticus, providing potential therapeutic targets for neuroprotection in epilepsy.
Insights
In epilepsy, activated resident microglia proliferate after seizures, contributing to brain damage. Inhibiting this microglial proliferation via CSF-1R pathway may offer neuroprotection.
Area of Science:
- Neuroscience
- Neuroinflammation
- Epilepsy Research
Background:
- Microglial activation is key in epileptic brain inflammation and neuronal loss.
- Distinguishing resident microglia from infiltrating monocytes is crucial for understanding seizure-induced brain changes.
Purpose of the Study:
- To differentiate resident microglia and infiltrating monocytes post-seizure.
- To investigate the role of microglial proliferation in neuronal death after seizures.
- To explore CSF-1R pathway as a therapeutic target for epilepsy.
Main Methods:
- Utilized CX3CR1GFP/+ CCR2RFP/+ mice for distinct cell labeling.
- Employed time-lapse two-photon imaging and patch clamp electrophysiology.
- Investigated kainic acid-induced seizures and CSF-1R inhibition.
Main Results:
- Activated microglia showed enlarged somas and reduced processes; monocytes were smaller and motile.
- Resident microglia, not monocytes, proliferated in the hippocampus post-seizure.
- CSF-1R inhibition reduced microglial proliferation and neuronal death, without affecting seizure behavior.
Conclusions:
- Proliferation of activated resident microglia contributes to hippocampal neuronal death post-status epilepticus.
- The CSF-1R pathway is a potential therapeutic target for neuroprotection in epilepsy.
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