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Published on: November 25, 2014
Perinodal glial swelling mitigates axonal degradation in a model of axonal injury
Vladislav Volman1, Laurel J Ng2
1Simulation, Engineering, and Testing, L-3 Applied Technologies Incorporated, San Diego, California Vladislav.Volman@l-3com.com.
Abstract:
Mild traumatic brain injury (mTBI) has been associated with the damage to myelinated axons in white matter tracts. Animal models and in vitro studies suggest that axonal degradation develops during a latent period following a traumatic event. This delay has been attributed to slowly developing axonal membrane depolarization that is initiated by injury-induced ionic imbalance and in turn, leads to the activation of Ca(2+) proteases via pathological accumulation of Ca(2+). However, the mechanisms mitigating the transition to axonal degradation after injury remain elusive. We addressed this question in a detailed biophysical model of axonal injury that incorporated ion exchange and glial swelling mechanisms. We show that glial swelling, which often co-occurs with mTBI, promotes axonal survival by regulating extracellular K(+) dynamics, extending the range of injury parameters in which axons exhibit stable membrane potential postinjury. In addition, glial swelling was instrumental in reducing axonal sensitivity to repetitive stretch injury that occurred several minutes following the first one. Results of this study suggest that acute post-traumatic swelling of perinodal astrocytes helps prevent or postpone axonal degradation by maintaining physiologically relevant levels of extracellular K(+).
Insights
Glial swelling after mild traumatic brain injury (mTBI) helps axons survive by regulating potassium levels. This finding reveals a key mechanism that may prevent or delay axonal degradation following brain trauma.
Area of Science:
- Neuroscience
- Biophysics
- Cellular Biology
Background:
- Mild traumatic brain injury (mTBI) can damage white matter axons.
- Axonal degradation follows a latent period after injury, linked to ionic imbalance and calcium influx.
- Mechanisms protecting axons post-injury are not fully understood.
Purpose of the Study:
- Investigate mechanisms that mitigate axonal degradation after injury.
- Explore the role of glial swelling in axonal protection following mTBI.
Main Methods:
- Developed a detailed biophysical model of axonal injury.
- Incorporated ion exchange and glial swelling mechanisms into the model.
- Simulated the effects of injury parameters on axonal membrane potential and survival.
Main Results:
- Glial swelling promotes axonal survival by regulating extracellular potassium dynamics.
- Glial swelling extends the range of injury parameters allowing stable axonal membrane potential.
- Glial swelling reduces axonal sensitivity to secondary, repetitive injuries.
Conclusions:
- Acute post-traumatic glial swelling, specifically of perinodal astrocytes, is crucial for axonal survival.
- Glial swelling helps maintain physiological extracellular potassium levels, preventing axonal degradation.
- This mechanism offers a potential therapeutic target for mitigating mTBI consequences.
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