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Updated: Jan 22, 2026

An Ex Vivo Laser-induced Spinal Cord Injury Model to Assess Mechanisms of Axonal Degeneration in Real-time
Published on: November 25, 2014
Axon injury signaling and compartmentalized injury response in glaucoma
Stephanie B Syc-Mazurek1, Richard T Libby2
1Department of Ophthalmology, University of Rochester Medical Center, Rochester, NY, USA; Neuroscience Graduate Program, University of Rochester Medical Center, Rochester, NY, USA.
Abstract:
Axonal degeneration is an active, highly controlled process that contributes to beneficial processes, such as developmental pruning, but also to neurodegeneration. In glaucoma, ocular hypertension leads to vision loss by killing the output neurons of the retina, the retinal ganglion cells (RGCs). Multiple processes have been proposed to contribute to and/or mediate axonal injury in glaucoma, including: neuroinflammation, loss of neurotrophic factors, dysregulation of the neurovascular unit, and disruption of the axonal cytoskeleton. While the inciting injury to RGCs in glaucoma is complex and potentially heterogeneous, axonal injury is ultimately thought to be the key insult that drives glaucomatous neurodegeneration. Glaucomatous neurodegeneration is a complex process, with multiple molecular signals contributing to RGC somal loss and axonal degeneration. Furthermore, the propagation of the axonal injury signal is complex, with injury triggering programs of degeneration in both the somal and axonal compartment. Further complicating this process is the involvement of multiple cell types that are known to participate in the process of axonal and neuronal degeneration after glaucomatous injury. Here, we review the axonal signaling that occurs after injury and the molecular signaling programs currently known to be important for somal and axonal degeneration after glaucoma-relevant axonal injuries.
Insights
Axonal degeneration in glaucoma involves complex signaling pathways that cause retinal ganglion cell (RGC) death. Understanding these molecular signals is key to developing treatments for vision loss in glaucoma.
Area of Science:
- Neuroscience
- Ophthalmology
- Cell Biology
Background:
- Axonal degeneration is a critical process in both development and neurodegeneration.
- Glaucoma, characterized by ocular hypertension, leads to vision loss through retinal ganglion cell (RGC) death.
- Axonal injury is considered the primary driver of glaucomatous neurodegeneration.
Purpose of the Study:
- To review axonal signaling mechanisms following injury in glaucoma.
- To explore molecular signaling programs involved in RGC somal and axonal degeneration.
- To understand the multifaceted nature of glaucomatous neurodegeneration.
Main Methods:
- Literature review of axonal signaling in glaucoma.
- Analysis of molecular pathways contributing to RGC degeneration.
- Examination of cell-type involvement in axonal degeneration.
Main Results:
- Multiple factors contribute to axonal injury in glaucoma, including neuroinflammation and cytoskeletal disruption.
- Glaucomatous neurodegeneration involves complex molecular signals affecting both RGC soma and axons.
- Injury signals propagate, triggering degeneration programs in different cellular compartments.
Conclusions:
- Axonal degeneration is a key pathological feature of glaucoma.
- Understanding the intricate molecular signaling is crucial for therapeutic interventions.
- Further research into cell-type specific roles can elucidate degeneration mechanisms.
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