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Updated: Jan 25, 2026

Controlled Cortical Impact Model for Traumatic Brain Injury
Published on: August 5, 2014
Controlled Cortical Impact Leads to Cognitive and Motor Function Deficits that Correspond to Cellular Pathology in a
Holly A Kinder1,2, Emily W Baker1,2, Elizabeth W Howerth1,3
1Regenerative Bioscience Center, University of Georgia, Athens, Georgia.
Insights
Traumatic brain injury (TBI) in piglets causes cognitive and motor deficits, alongside cellular changes. This piglet model is crucial for developing new TBI therapies.
Area of Science:
- Neuroscience
- Pathology
- Animal Models
Background:
- Traumatic brain injury (TBI) is a major cause of death and disability.
- Pediatric TBI survivors often face long-term cognitive, behavioral, and motor impairments.
- Large animal models are essential for studying TBI pathophysiology and identifying therapeutic targets.
Purpose of the Study:
- To evaluate cognitive, motor, and histopathological outcomes in a piglet controlled cortical impact (CCI) TBI model.
- To establish a preclinical model for assessing TBI-induced functional deficits and cellular changes.
- To provide a framework for future therapeutic intervention studies in TBI.
Main Methods:
- A controlled cortical impact (CCI) model was used to induce TBI in piglets.
- Cognitive function was assessed using spatial T-maze and open field tests.
- Motor function was evaluated through gait analysis.
- Histological analysis examined neuronal loss, glial activation, and neuroblast proliferation post-injury.
Main Results:
- TBI piglets showed impaired spatial memory and reduced exploratory behavior, followed by hyperactivity.
- Gait analysis revealed significant alterations in gait parameters and limb pressure distribution.
- Histology confirmed decreased neurons, increased microglia activation and astrogliosis, neuronal loss in the hippocampus, and increased neuroblast proliferation.
- A strong correlation was observed between TBI-induced cellular changes and functional deficits.
Conclusions:
- The piglet CCI model effectively replicates TBI-induced cognitive and motor impairments.
- Significant histopathological changes correlate with observed functional deficits.
- This model provides a robust platform for investigating TBI pathophysiology and testing therapeutic strategies.
Abstract:
Traumatic brain injury (TBI) is a leading cause of death and disability in the United States, with children who sustain a TBI having a greater risk of developing long-lasting cognitive, behavioral, and motor function deficits. This has led to increased interest in utilizing large animal models to study pathophysiologic and functional changes after injury in hopes of identifying novel therapeutic targets. In the present study, a controlled cortical impact (CCI) piglet TBI model was utilized to evaluate cognitive, motor, and histopathologic outcomes. CCI injury (4 m/sec velocity, 9 mm depression, 400 msec dwell time) was induced at the parietal cortex. Compared with normal pigs (n = 5), TBI pigs (n = 5) exhibited appreciable cognitive deficiencies, including significantly impaired spatial memory in spatial T-maze testing and a significant decrease in exploratory behaviors followed by marked hyperactivity in open field testing. Additionally, gait analysis revealed significant increases in cycle time and stance percent, significant decreases in hind reach, and a shift in the total pressure index from the front to the hind limb on the affected side, suggesting TBI impairs gait and balance. Pigs were sacrificed 28 days post-TBI and histological analysis revealed that TBI lead to a significant decrease in neurons and a significant increase in microglia activation and astrogliosis/astrocytosis at the perilesional area, a significant loss in neurons at the dorsal hippocampus, and significantly increased neuroblast proliferation at the subventricular zone. These data demonstrate a strong relationship between TBI-induced cellular changes and functional outcomes in our piglet TBI model that lay the framework for future studies that assess the ability of therapeutic interventions to contribute to functional improvements.
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