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Updated: Jan 26, 2026

Induction of Diffuse Axonal Brain Injury in Rats Based on Rotational Acceleration
Published on: May 9, 2020
Myelin Damage in Diffuse Axonal Injury
Jiao Mu1, Meiyu Li1, Tingting Wang1
1Department of Forensic Medicine, Hebei North University, Zhangjiakou, China.
Abstract:
Diffuse axonal injury (DAI) is characterized by delayed axonal disconnection. Although the effect of DAI on axonal pathology has been well documented, there is limited information regarding the role of myelin in the pathogenesis of DAI. We used a modified Marmarou method to create a moderate DAI model in adult rat and examined the corpus callosum and brain stem for myelin pathology and dynamic glial responses to DAI. During the first week following DAI, Luxol Fast Blue staining and western blot analysis for MBP showed significant loss of myelin in the corpus callosum and the brain stem. Increased apoptosis of mature oligodendrocyte, as depicted by its marker CC-1, was observed. Conversely, there was an increased number of Olig2-positive cells accompanied by hypertrophic microglia/macrophage and mild reactive astrocytes. Electron microscopy revealed degenerating axons in the corpus callosum and marked myelin abnormalities in the brain stem in the early stage of DAI. Brain stem regions exhibited myelin intrusions or external protrusions with widespread delamination and myelin collapse, leading to degeneration of accompanying axons. Our results show distinct pathologic processes involving axon and myelin between the corpus callosum and the brain stem in DAI. Oligodendrocyte selective vulnerability and subsequent demyelination may contribute to axonal degeneration in the brain stem. Defining the cause of ongoing oligodendrocyte death and promoting myelin regeneration may provide important targets for therapeutic interventions of DAI.
Insights
Diffuse axonal injury (DAI) involves myelin damage, particularly in the brain stem, leading to axonal degeneration. Understanding oligodendrocyte vulnerability and promoting myelin repair are key for DAI therapies.
Area of Science:
- Neuroscience
- Pathology
Background:
- Diffuse axonal injury (DAI) is a common traumatic brain injury.
- Axonal pathology in DAI is well-studied, but the role of myelin is less understood.
Purpose of the Study:
- To investigate myelin pathology and glial responses in a rat model of DAI.
- To compare DAI-induced changes in the corpus callosum and brain stem.
Main Methods:
- Moderate DAI model induced using the Marmarou method in adult rats.
- Luxol Fast Blue staining, Western blot for myelin basic protein (MBP), and immunohistochemistry for glial markers (CC-1, Olig2).
- Electron microscopy to examine axonal and myelin ultrastructure.
Main Results:
- Significant myelin loss in the corpus callosum and brain stem within the first week post-DAI.
- Increased oligodendrocyte apoptosis (CC-1 positive) and proliferation (Olig2 positive) in affected areas.
- Distinct myelin abnormalities, including intrusions and delamination, observed in the brain stem, contributing to axonal degeneration.
Conclusions:
- DAI involves distinct axonal and myelin pathology in different brain regions.
- Oligodendrocyte vulnerability and subsequent demyelination are implicated in brain stem axonal degeneration in DAI.
- Targeting oligodendrocyte death and promoting myelin regeneration may offer therapeutic strategies for DAI.
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