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Inducing Post-Traumatic Epilepsy in a Mouse Model of Repetitive Diffuse Traumatic Brain Injury
Published on: February 10, 2020
Interleukin-1 Receptor in Seizure Susceptibility after Traumatic Injury to the Pediatric Brain
Bridgette D Semple1, Terence J O'Brien2, Kayleen Gimlin3
1Department of Medicine (Royal Melbourne Hospital), Melbourne Brain Centre, University of Melbourne, Parkville, 3050 Victoria, Australia, Bridgette.Semple@unimelb.edu.au.
Insights
Epilepsy following pediatric traumatic brain injury (TBI) is common. Targeting interleukin-1 (IL-1) signaling with IL-1 receptor antagonist (IL-1Ra) reduced seizures and improved outcomes in a pediatric TBI mouse model.
Area of Science:
- Neuroscience
- Pediatric Neurology
- Inflammation Research
Background:
- Epilepsy is a frequent complication of pediatric traumatic brain injury (TBI), significantly impacting quality of life.
- Understanding the mechanisms of epileptogenesis in the immature brain is crucial for developing effective treatments.
Purpose of the Study:
- To establish and characterize a mouse model of pediatric TBI-induced epilepsy.
- To investigate the role of interleukin-1 (IL-1) signaling in post-TBI epileptogenesis.
- To evaluate the therapeutic potential of IL-1 receptor antagonist (IL-1Ra) in mitigating TBI-related epilepsy and neuropathology.
Main Methods:
- A controlled cortical impact model was used in mice at postnatal day 21 to mimic pediatric TBI.
- Mice were treated with IL-1Ra or vehicle, followed by video-electroencephalography (EEG) for seizure evaluation.
- Behavioral tests, neuropathological analyses, and ex vivo MRI were employed to assess functional outcomes and brain pathology.
Main Results:
- TBI mice exhibited increased seizure susceptibility and hippocampal mossy fiber sprouting compared to sham controls.
- IL-1β and IL-1 receptor expression were upregulated post-TBI.
- IL-1Ra treatment reduced seizure susceptibility, hippocampal astrogliosis, and improved spatial memory.
- Chronic IL-1Ra treatment preserved cortical tissue and reduced evoked seizures.
Conclusions:
- The pediatric TBI mouse model effectively replicates key features of post-traumatic epilepsy.
- IL-1 signaling mediates TBI-induced astrogliosis and seizure susceptibility.
- Targeting IL-1 signaling presents a promising therapeutic strategy for reducing epilepsy and improving outcomes after pediatric brain injury.
Abstract:
Epilepsy after pediatric traumatic brain injury (TBI) is associated with poor quality of life. This study aimed to characterize post-traumatic epilepsy in a mouse model of pediatric brain injury, and to evaluate the role of interleukin-1 (IL-1) signaling as a target for pharmacological intervention. Male mice received a controlled cortical impact or sham surgery at postnatal day 21, approximating a toddler-aged child. Mice were treated acutely with an IL-1 receptor antagonist (IL-1Ra; 100 mg/kg, s.c.) or vehicle. Spontaneous and evoked seizures were evaluated from video-EEG recordings. Behavioral assays tested for functional outcomes, postmortem analyses assessed neuropathology, and brain atrophy was detected by ex vivo magnetic resonance imaging. At 2 weeks and 3 months post-injury, TBI mice showed an elevated seizure response to the convulsant pentylenetetrazol compared with sham mice, associated with abnormal hippocampal mossy fiber sprouting. A robust increase in IL-1β and IL-1 receptor were detected after TBI. IL-1Ra treatment reduced seizure susceptibility 2 weeks after TBI compared with vehicle, and a reduction in hippocampal astrogliosis. In a chronic study, IL-1Ra-TBI mice showed improved spatial memory at 4 months post-injury. At 5 months, most TBI mice exhibited spontaneous seizures during a 7 d video-EEG recording period. At 6 months, IL-1Ra-TBI mice had fewer evoked seizures compared with vehicle controls, coinciding with greater preservation of cortical tissue. Findings demonstrate this model's utility to delineate mechanisms underlying epileptogenesis after pediatric brain injury, and provide evidence of IL-1 signaling as a mediator of post-traumatic astrogliosis and seizure susceptibility.SIGNIFICANCE STATEMENT Epilepsy is a common cause of morbidity after traumatic brain injury in early childhood. However, a limited understanding of how epilepsy develops, particularly in the immature brain, likely contributes to the lack of efficacious treatments. In this preclinical study, we first demonstrate that a mouse model of traumatic injury to the pediatric brain reproduces many neuropathological and seizure-like hallmarks characteristic of epilepsy. Second, we demonstrate that targeting the acute inflammatory response reduces cognitive impairments, the degree of neuropathology, and seizure susceptibility, after pediatric brain injury in mice. These findings provide evidence that inflammatory cytokine signaling is a key process underlying epilepsy development after an acquired brain insult, which represents a feasible therapeutic target to improve quality of life for survivors.

