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Updated: Mar 8, 2026

Induction of Diffuse Axonal Brain Injury in Rats Based on Rotational Acceleration
Published on: May 9, 2020
Rapid neuroinflammatory response localized to injured neurons after diffuse traumatic brain injury in swine
Kathryn L Wofford1, James P Harris2, Kevin D Browne2
1Center for Neurotrauma, Neurodegeneration & Restoration, Corporal Michael J. Crescenz Veterans Affairs Medical Center, 3900 Woodland Avenue, Philadelphia, PA 19104, USA; School of Biomedical Engineering, Science and Health Systems, Drexel University, 3141 Chestnut Street, Philadelphia, PA 19104, USA; Center for Brain Injury & Repair, Department of Neurosurgery, University of Pennsylvania, 105 Hayden Hall, 3320 Smith Walk, Philadelphia, PA 19104, USA.
Abstract:
Despite increasing appreciation of the critical role that neuroinflammatory pathways play in brain injury and neurodegeneration, little is known about acute microglial reactivity following diffuse traumatic brain injury (TBI) - the most common clinical presentation that includes all concussions. Therefore, we investigated acute microglial reactivity using a porcine model of closed-head rotational velocity/acceleration-induced TBI that closely mimics the biomechanical etiology of inertial TBI in humans. We observed rapid microglial reactivity within 15min of both mild and severe TBI. Strikingly, microglial activation was restrained to regions proximal to individual injured neurons - as denoted by trauma-induced plasma membrane disruption - which served as epicenters of acute reactivity. Single-cell quantitative analysis showed that in areas free of traumatically permeabilized neurons, microglial density and morphology were similar between sham or following mild or severe TBI. However, microglia density increased and morphology shifted to become more reactive in proximity to injured neurons. Microglial reactivity around injured neurons was exacerbated following repetitive TBI, suggesting further amplification of acute neuroinflammatory responses. These results indicate that neuronal trauma rapidly activates microglia in a highly localized manner, and suggest that activated microglia may rapidly influence neuronal stability and/or pathophysiology after diffuse TBI.
Insights
Microglia rapidly activate near injured neurons after traumatic brain injury (TBI). This localized neuroinflammation, observed within 15 minutes, suggests microglia play a key role in the brain
Area of Science:
- Neuroscience
- Immunology
- Pathology
Background:
- Neuroinflammation is crucial in brain injury and neurodegeneration.
- Acute microglial reactivity following diffuse traumatic brain injury (TBI) is poorly understood.
- Diffuse TBI, including concussions, is the most common clinical presentation.
Purpose of the Study:
- To investigate acute microglial reactivity following diffuse TBI.
- To utilize a porcine model mimicking human inertial TBI biomechanics.
Main Methods:
- A closed-head rotational velocity/acceleration-induced TBI model in pigs.
- Observation of microglial reactivity within 15 minutes post-TBI.
- Single-cell quantitative analysis of microglial density and morphology around injured neurons.
Main Results:
- Rapid microglial reactivity observed within 15 minutes of both mild and severe TBI.
- Microglial activation was localized to regions near traumatically injured neurons.
- Microglial density and reactivity increased around injured neurons, exacerbated by repetitive TBI.
Conclusions:
- Neuronal trauma rapidly and locally activates microglia.
- Activated microglia may influence neuronal stability and pathophysiology after diffuse TBI.
- Repetitive TBI amplifies acute neuroinflammatory responses.

