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Investigations on Alterations of Hippocampal Circuit Function Following Mild Traumatic Brain Injury
Published on: November 19, 2012
Facial nerve injury-associated hippocampal microglial activation
Jeimmy Cerón1, Julieta Troncoso2
1Laboratorio de Neurofisiología Comportamental, Departamento de Ciencias Fisiológicas, Facultad de Medicina, Universidad Nacional de Colombia, Bogotá, D.C., Colombia. jmcerong@unal.edu.co.
Abstract:
Introduction: Facial nerve injury induces changes in hippocampal long-term synaptic plasticity and affects both object recognition memory and spatial memory consolidation (i.e., hippocampus-dependent tasks). Although facial nerve injury-associated microglial activation has been described regarding the primary motor cortex, it has not been ascertained whether something similar occurs in the hippocampus. Peripheral nerve injuryassociated microglial changes in hippocampal tissue could explain neuronal changes in the contralateral hippocampus. Objective: To characterize the effect of unilateral facial nerve injury on microglial proliferation and activation in the contralateral hippocampus. Materials and methods. Immunohistochemical experiments detected microglial cells in the hippocampal tissue of rats that had undergone facial nerve injury. The animals were sacrificed at specific times after injury to evaluate hippocampal microglial cell proliferation (cell density) and activation (cell area); sham-operated animals were compared to lesioned animals sacrificed 1, 3, 7, 21, or 35 days after injury. Results: Facial nerve-injured rats’ hippocampal microglial cells proliferated and adopted an activated phenotype 3- to 21-days post-lesion. Such modifications were transient since the microglial cells returned to their resting state five weeks after injury, despite the injury’s irreversible nature. Conclusions: Facial nerve injury causes the transient proliferation and activation of microglial cells in the hippocampus. This finding might partly explain the morphological and electrophysiological changes described for CA1 pyramidal neurons and the impairment of spatial memory consolidation which has previously been observed in facial nerve-injured rats.
Insights
Facial nerve injury triggers temporary microglial cell proliferation and activation in the hippocampus, potentially explaining memory deficits. These changes resolve over time despite the permanent injury.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Facial nerve injury impacts hippocampus-dependent memory and synaptic plasticity.
- Microglial activation is known in the motor cortex after facial nerve injury, but not the hippocampus.
- Peripheral nerve injury may cause microglial changes in the hippocampus, affecting neuronal function.
Purpose of the Study:
- To investigate the impact of unilateral facial nerve injury on microglial proliferation and activation in the contralateral hippocampus.
- To characterize the temporal dynamics of microglial responses in the hippocampus following facial nerve injury.
Main Methods:
- Immunohistochemistry was used to identify and quantify microglial cells in rat hippocampal tissue.
- Microglial proliferation (cell density) and activation (cell area) were assessed at 1, 3, 7, 21, and 35 days post-injury.
- Sham-operated rats served as controls for comparison.
Main Results:
- Facial nerve injury led to significant microglial proliferation and activation in the hippocampus between 3 and 21 days post-lesion.
- These microglial changes were transient, with cells returning to a resting state by 5 weeks post-injury.
- The observed microglial response occurred in the hippocampus contralateral to the facial nerve injury.
Conclusions:
- Unilateral facial nerve injury induces a temporary increase in microglial proliferation and activation within the hippocampus.
- This transient microglial response may contribute to observed neuronal alterations and spatial memory consolidation impairments in affected rats.
- The findings suggest a link between peripheral nerve injury, neuroinflammation in the hippocampus, and cognitive deficits.

