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Cellular mechanisms of hereditary photoreceptor degeneration - Focus on cGMP
Michael Power1, Soumyaparna Das2, Karin Schütze3
1Cell Death Mechanism Group, Institute for Ophthalmic Research, University of Tübingen, Germany; Centre for Integrative Neurosciences (CIN), University of Tübingen, Germany; Graduate Training Centre of Neuroscience (GTC), University of Tübingen, Germany.
Abstract:
The cellular mechanisms underlying hereditary photoreceptor degeneration are still poorly understood, a problem that is exacerbated by the enormous genetic heterogeneity of this disease group. However, the last decade has yielded a wealth of new knowledge on degenerative pathways and their diversity. Notably, a central role of cGMP-signalling has surfaced for photoreceptor cell death triggered by a subset of disease-causing mutations. In this review, we examine key aspects relevant for photoreceptor degeneration of hereditary origin. The topics covered include energy metabolism, epigenetics, protein quality control, as well as cGMP- and Ca2+-signalling, and how the related molecular and metabolic processes may trigger photoreceptor demise. We compare and integrate evidence on different cell death mechanisms that have been associated with photoreceptor degeneration, including apoptosis, necrosis, necroptosis, and PARthanatos. A special focus is then put on the mechanisms of cGMP-dependent cell death and how exceedingly high photoreceptor cGMP levels may cause activation of Ca2+-dependent calpain-type proteases, histone deacetylases and poly-ADP-ribose polymerase. An evaluation of the available literature reveals that a large group of patients suffering from hereditary photoreceptor degeneration carry mutations that are likely to trigger cGMP-dependent cell death, making this pathway a prime target for future therapy development. Finally, an outlook is given into technological and methodological developments that will with time likely contribute to a comprehensive overview over the entire metabolic complexity of photoreceptor cell death. Building on such developments, new imaging technology and novel biomarkers may be used to develop clinical test strategies, that fully consider the genetic heterogeneity of hereditary retinal degenerations, in order to facilitate clinical testing of novel treatment approaches.
Insights
Hereditary photoreceptor degeneration involves complex pathways, with cyclic guanosine monophosphate (cGMP)-signalling emerging as a key player in cell death. Targeting this cGMP pathway offers promising therapeutic strategies for retinal degeneration.
Area of Science:
- Ophthalmology
- Molecular Biology
- Genetics
Background:
- Hereditary photoreceptor degeneration is poorly understood due to genetic heterogeneity.
- Recent advances reveal diverse degenerative pathways, highlighting a central role for cGMP-signalling in cell death.
Purpose of the Study:
- To review cellular mechanisms of hereditary photoreceptor degeneration.
- To focus on cGMP-dependent cell death pathways and their therapeutic potential.
Main Methods:
- Literature review and synthesis of evidence on photoreceptor degeneration.
- Comparison of various cell death mechanisms (apoptosis, necrosis, necroptosis, PARthanatos).
- In-depth analysis of cGMP- and Ca2+-signalling pathways.
Main Results:
- Elevated photoreceptor cGMP levels can activate proteases, histone deacetylases, and PAR polymerase, leading to cell death.
- A significant portion of patients with hereditary photoreceptor degeneration harbor mutations linked to cGMP-dependent cell death.
- cGMP-dependent cell death represents a promising therapeutic target.
Conclusions:
- Understanding cGMP-signalling is crucial for developing treatments for hereditary retinal degenerations.
- Future technological advancements will aid in deciphering metabolic complexity and developing personalized clinical strategies.
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