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A Mouse Model of Single and Repetitive Mild Traumatic Brain Injury
Published on: June 20, 2017
Multiple mild traumatic brain injury in the rat produces persistent pathological alterations in the brain
Diane M Brooks1, Sarjubhai A Patel1, Eric D Wohlgehagen1
1The Neural Injury Center, University of Montana, Missoula, MT 59812, United States.
Abstract:
Multiple mild traumatic brain injury (mmTBI), in certain cases, produces persistent symptoms. However, the molecular mechanisms underlying these symptoms remain unclear. Here, we demonstrate extended pathological changes in the rat brain following mmTBI. Using the lateral fluid percussion (LFP) technique we exposed adult male Wistar rats to a mild TBI (mTBI) once a week for four weeks and compared them to surgical shams. At 90days following the last TBI or sham procedure the animals were cognitively tested in the Morris Water Maze (MWM), euthanized, and the brains removed for immunohistochemistry. At 90days following the last mTBI, NRF-2 staining was significantly decreased in the hilus of the hippocampus and cortex on the injured side, but did not significantly differ from shams on the un-injured side. CD68 positive microglia were significantly increased in the ipsilateral corpus callosum, cortex, and internal capsule of injured animals. Reactive astrocytosis, determined by increased GFAP staining, was also evident in the corpus callosum, cortex, internal capsule and thalamus on the injured side. Interestingly, the corpus callosum thickness at the midline was decreased in injured animals and had evident demyelination when compared to sham animals. Despite these findings, there were no significant differences in neurological assessments at 90days following the last injury. In MWM testing there were not significant differences in the training phase, the time spent in the thigmotaxia zone, or the target quadrant during the probe trial. However, there were significant differences between shams and injured animals in platform zone crossings during the probe trial. These results demonstrate that repetitive head trauma may produce persistent, long-term pathological alterations in brain architecture that may be difficult to detect using standard cognitive and neurological assessments.
Insights
Repetitive mild traumatic brain injury (mmTBI) in rats caused long-term brain damage, including inflammation and demyelination, even without obvious cognitive decline. These persistent pathological changes highlight potential hidden consequences of head trauma.
Area of Science:
- Neuroscience
- Neuropathology
- Traumatic Brain Injury Research
Background:
- Persistent symptoms can follow multiple mild traumatic brain injuries (mmTBI), but the underlying molecular mechanisms are not fully understood.
- Understanding long-term brain alterations after mmTBI is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the long-term pathological and molecular changes in the rat brain following a repetitive mild traumatic brain injury (mmTBI) model.
- To correlate these pathological changes with cognitive and neurological assessments.
Main Methods:
- Adult male Wistar rats were subjected to repetitive mild TBI (mTBI) using the lateral fluid percussion (LFP) technique weekly for four weeks.
- Cognitive function was assessed using the Morris Water Maze (MWM) 90 days post-injury.
- Immunohistochemistry was performed to evaluate NRF-2, CD68 (microglia), and GFAP (astrocytes) expression, alongside assessing corpus callosum demyelination.
Main Results:
- Repetitive mTBI led to decreased NRF-2 staining in the hippocampus and cortex, increased CD68-positive microglia in multiple brain regions, and reactive astrocytosis.
- Significant demyelination and decreased corpus callosum thickness were observed in injured animals.
- Despite pathological changes, standard neurological assessments and most MWM tests showed no significant differences, except for platform zone crossings during the MWM probe trial.
Conclusions:
- Repetitive head trauma induces persistent, long-term pathological alterations in brain architecture, including neuroinflammation and white matter damage.
- These structural brain changes may not be readily detectable through standard cognitive and neurological assessments, suggesting a need for more sensitive diagnostic tools.

