Related Experiment Videos
Intrinsic survival mechanisms for retinal ganglion cells
1Department of Ophthalmology and Visual Sciences, University of Wisconsin Medical School, Madison, USA. llevin@macc.wisc.edu
Abstract:
Retinal ganglion cells (RGCs) undergo programmed cell death (apoptosis) after axonal injury. This cell death is mediated by several mechanisms, including deprivation of neurotrophic factors, alterations in gene expression, and production of reactive oxygen species. However, death of RGCs is delayed after axonal injury, and a significant number survive even after several days. This suggests that RGC death is not an immediate result of axonal injury, and that other pro-survival factors may play a role. While we and other researchers have focused on the mechanisms of cell death after axonal injury, it may be that determining the regulation of cell survival mechanisms may lead to innovative methods for neuroprotection. The final common pathway of glaucomatous optic neuropathy is RGC death, probably via damage to their axons occurring at or near the lamina cribrosa. Axonal injury leads directly (1) or indirectly (2) to the death of retinal ganglion cells. We and others have demonstrated that axotomy is associated with RGC apoptosis (3-7) as well as specific changes in expression of certain genes at the mRNA and protein level (8, 9). Reactive oxygen species may also be part of the pathway for RGC death (10, 11). We therefore hypothesize that axotomy leads to molecular events that are potentially destructive to RGCs, but also induces changes that are potentially protective against cellular injury. If this is the case, then RGC death from axonal injury would result not only from initiation of apoptosis, but also from failure of intrinsic neuroprotective mechanisms. It should therefore be theoretically possible to modulate these two classes of responses, and thus improve RGC cell survival after axotomy.
Insights
Retinal ganglion cell (RGC) death after axonal injury involves apoptosis, but survival suggests protective mechanisms. Targeting both cell death and survival pathways may offer neuroprotection for conditions like glaucoma.
Area of Science:
- Neuroscience
- Cell Biology
- Ophthalmology
Background:
- Retinal ganglion cells (RGCs) undergo apoptosis following axonal injury, a key event in glaucomatous optic neuropathy.
- Mechanisms include neurotrophic factor deprivation, altered gene expression, and reactive oxygen species production.
- Delayed RGC death suggests interplay between cell death and survival pathways.
Purpose of the Study:
- To investigate the dual role of molecular events following axonal injury in RGCs.
- To explore the potential for neuroprotection by modulating both destructive and protective cellular responses.
- To understand the failure of intrinsic neuroprotective mechanisms contributing to RGC death.
Main Methods:
- Axotomy models to induce axonal injury in RGCs.
- Analysis of gene expression changes at mRNA and protein levels.
- Investigation of apoptosis pathways and reactive oxygen species involvement.
Main Results:
- Axotomy triggers molecular events leading to RGC apoptosis.
- Evidence suggests that RGCs also activate intrinsic protective mechanisms.
- The balance between apoptotic and survival pathways determines RGC fate.
Conclusions:
- RGC death after axonal injury is a complex process involving both cell death initiation and failure of survival mechanisms.
- Modulating these opposing pathways offers a promising strategy for neuroprotection in optic neuropathies.
- Further research into RGC survival factors could lead to novel therapeutic interventions.