Related Experiment Videos
Traumatic brain injury in the immature mouse brain: characterization of regional vulnerability
Winnie Tong1, Takuji Igarashi, Donna M Ferriero
1Department of Neurological Surgery, University of California, San Francisco, California 94143, USA.
Abstract:
We characterized the regional and temporal patterns of neuronal injury and axonal degeneration after controlled cortical impact of moderate severity in mice at postnatal day 21. Animals were euthanized at 1, 3, or 7 days after injury or sham operation. The brains were removed and prepared for immunolocalization of neurons and microglia/macrophages or subjected to Fluoro-Jade and silver stains, indicators of irreversible neuronal cell injury and axonal degeneration. There was significant neuronal loss in both the ipsi- and the contralateral cortices, ipsilateral hippocampus, and ipsilateral thalamus by 7 days post injury compared to sham-operated animals. Activated microglia/macrophages were most prominent in regions of neuronal loss including the ipsilateral cortex, hippocampus, and thalamus. Neuronal injury, as evidenced by Fluoro-Jade labeling, was not apparent in sham-operated animals. In injured animals, labeling was identified in the ipsilateral cortex and hippocampus at 1 and 3 days post injury. Silver- and Fluoro-Jade-labeled degenerating axons were observed in the ipsilateral subcortical white matter by 1 day post injury, in the ipsilateral external capsule, caudate putamen, and contralateral subcortical white matter by 3 days post injury, and in the internal capsule, pyramidal tracts, and cerebellar peduncles by 7 days post injury. Our findings demonstrate that controlled cortical impact in the developing brain generates neuronal loss in both the ipsilateral and the contralateral cortex, a temporally distinct pattern of subcortical neuronal injury/death, and widespread white matter damage. These observations serve as an important baseline for studying human brain injury and optimizing therapies for the brain-injured child.
Insights
Controlled cortical impact in developing mice causes widespread neuronal loss and axonal damage in both brain hemispheres. This study provides a baseline for understanding pediatric brain injuries and developing treatments.
Area of Science:
- Neuroscience
- Developmental Biology
- Traumatic Brain Injury Research
Background:
- Controlled cortical impact (CCI) is a model for studying traumatic brain injury (TBI).
- Understanding TBI in developing brains is crucial for pediatric care.
- Limited data exists on the precise patterns of injury in the immature brain.
Purpose of the Study:
- To characterize the regional and temporal patterns of neuronal injury and axonal degeneration following CCI in developing mice.
- To investigate the inflammatory response (microglia/macrophage activation) in relation to injury.
- To establish a baseline for future therapeutic studies in pediatric TBI.
Main Methods:
- Moderate severity CCI was induced in postnatal day 21 mice.
- Animals were analyzed at 1, 3, and 7 days post-injury.
- Immunohistochemistry for neurons and microglia/macrophages, Fluoro-Jade, and silver staining were used to assess neuronal and axonal damage.
Main Results:
- Significant neuronal loss occurred in ipsilateral and contralateral cortices, hippocampus, and thalamus by 7 days post-injury.
- Activated microglia/macrophages were concentrated in areas of neuronal loss.
- Neuronal injury was evident by 1-3 days, while axonal degeneration was observed across multiple white matter tracts by 1-7 days post-injury.
Conclusions:
- CCI in the developing brain causes bilateral cortical neuronal loss and significant white matter damage.
- The study reveals a temporally distinct pattern of subcortical neuronal injury and degeneration.
- These findings are foundational for research into human brain injury and therapeutic interventions for children.