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Updated: Jun 6, 2026

A Pediatric Concussion Model in Mice: Closed Head Injury with Long-Term Disorders (CHILD)
Published on: February 7, 2025
Defining the critical period for neocortical neurogenesis after pediatric brain injury
Matthew V Covey1, Yuhui Jiang, Vamsi V Alli
1Department of Neurology and Neurosciences, New Jersey Medical School, University of Medicine and Dentistry of New Jersey, Newark, N.J., USA.
Insights
The immature brain can generate new neurons after traumatic brain injury (TBI), but this regenerative capacity decreases significantly with age. Early injury in young rats shows more neurogenesis than in older ones.
Area of Science:
- Neuroscience
- Developmental Biology
- Regenerative Medicine
Background:
- Pediatric traumatic brain injury (TBI) is a critical issue with limited understanding of brain regeneration.
- Most TBI research focuses on cell death, not the potential for neural repair.
Purpose of the Study:
- To investigate the capacity for neocortical neuron production following traumatic brain injury in developing rats.
- To determine how age influences the brain's regenerative response to injury.
Main Methods:
- Utilized a cryoinjury model to induce damage in the rat somatosensory cortex at postnatal days 6, 10, and 21.
- Employed 5-bromo-2-deoxyuridine (BrdU) labeling and doublecortin (DCX) staining to identify and quantify new neurons.
Main Results:
- New neocortical neurons (BrdU+/DCX+ cells) were observed near the injury site, with processes oriented towards the pial surface.
- The proliferative response and neuroblast production were highest in P6 rats and diminished significantly in P10 and P21 rats.
- Maximum new neuron production occurred within 4-7 days post-injury in P6 rats.
Conclusions:
- The developing brain possesses the ability to generate new neocortical neurons after injury.
- This neurogenic capacity declines substantially as the brain matures.
- Unlike hypoxic/ischemic injury, cryoinjury-induced neurogenesis is transient and diminishes over time.
Abstract:
Pediatric traumatic brain injury (TBI) is a significant and underappreciated societal problem. Whereas many TBI studies have evaluated the mechanisms of cell death after TBI, fewer studies have evaluated the extent to which regeneration is occurring. Here we used a cryoinjury model to damage the somatosensory cortex of rats at postnatal day 6 (P6), P10 and P21. We evaluated the production of new neocortical neurons using a combination of 5-bromo-2-deoxyuridine (BrdU) labeling combined with staining for doublecortin (DCX). BrdU+/DCX+ bipolar cells were observed adjacent to the neocortical lesion, with their processes oriented perpendicular to the pial surface. As the animals aged, both the overall proliferative response as well as the production of neocortical neuroblasts diminished, with P6 animals responding most robustly, P10 animals less strongly, and P21 animals showing a very modest proliferative response and virtually no evidence of neocortical neurogenesis. When BrdU was administered at increasingly delayed intervals after the injury at P6, there was a clear difference in the number of new neuroblasts produced as a function of age, with the greatest number of new neocortical neurons produced between 4 and 7 days after the injury. These studies demonstrate that the immature brain has the capacity to produce neocortical neurons after traumatic injury, but this capacity diminishes as the brain continues to develop. Furthermore, in contrast to moderate hypoxic/ischemic brain damage in the P6 rat, where neurogenesis persists for at least 2 months, the response to cryoinjury is quite different as the neurogenic response diminishes over time.
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