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Axotomy as an experimental model of neuronal injury and cell death
1Department of Pathology, Johns Hopkins University School of Medicine, Baltimore, Maryland 21205-2196, USA. koliatso@welchlink.welch.jhu.edu
Abstract:
Axonal transection provides very useful paradigms to study cellular responses to injury, mechanisms of regeneration and plasticity, and processes that lead to nerve cell degeneration. Moreover, models of axotomy are valuable for testing experimental therapeutic approaches. Lesions can be made with great precision, and, depending on the neural system, location of the lesion, and age of the animal, these models allow the opportunity to examine a range of neuronal responses. Many parameters influence the character, evolution, and outcomes of axotomy-related processes. The most severe outcome of axotomy is cell death, very common in lesions of neurons of the central nervous system (CNS), although neurons of the peripheral nervous system (PNS) may also die if the transection is sufficiently close to the neuronal cell body or if lesions are performed in young animals. Studies of axotomy models have provided clues into the cellular/molecular events associated with neuronal death and the ways in which interventions can delay or prevent processes that lead to cell death. In this review, we select examples, primarily from our own work, to illustrate how axotomy models have enhanced our understanding of neuronal responses to injury, clarified mechanisms of both regeneration/plasticity and degeneration/ cell death, and allowed assessments of the utility of therapeutic approaches.
Insights
Axonal transection models reveal cellular responses to nerve injury, guiding research into regeneration, degeneration, and therapeutic strategies for both central and peripheral nervous systems.
Area of Science:
- Neuroscience
- Cellular Biology
- Regenerative Medicine
Background:
- Axonal transection is a key method for studying nerve injury responses.
- Understanding neuronal degeneration and regeneration is crucial for developing treatments.
Purpose of the Study:
- To review how axotomy models advance the understanding of neuronal injury.
- To illustrate mechanisms of regeneration, plasticity, degeneration, and cell death.
- To assess experimental therapeutic approaches for nerve damage.
Main Methods:
- Utilizing precise axotomy models in various neural systems.
- Examining cellular and molecular events following axonal injury.
- Analyzing neuronal responses based on lesion location and animal age.
Main Results:
- Axotomy models provide insights into neuronal death, particularly in the central nervous system (CNS).
- Studies clarify cellular/molecular events underlying neuronal death and potential interventions.
- These models help evaluate the effectiveness of therapeutic strategies.
Conclusions:
- Axotomy models are indispensable for dissecting neuronal responses to injury.
- Research using these models enhances understanding of regeneration and degeneration processes.
- Axotomy paradigms are vital for testing and validating novel therapeutic interventions for neurological damage.