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Vibratome Sectioning Mouse Retina to Prepare Photoreceptor Cultures
Published on: December 22, 2014
PARP inhibition preserves cone photoreceptors in rd2 retina
Pakize Nur Akkaya1,2, María Miranda3, Inmaculada Almansa3
1Department of Histology-Embryology, Balikesir University Faculty of Medicine, Balikesir, Türkiye.
Abstract:
The rd2 mouse model, characterized by a mutation in the Prph2 gene, exhibits abnormal development of photoreceptor outer segments, resulting in progressive retinal degeneration. While the correlation between poly-ADP-ribose polymerase (PARP) activity and the degeneration of rod photoreceptors is established in the rd2 model, the specific mechanism driving cone degeneration in this model remains unclear. Furthermore, it is yet to be determined whether inhibiting PARP activity can effectively impede the degeneration of cone photoreceptors in this context. We demonstrated that PARP inhibitors Olaparib, BMN-673, and 3-aminobenzamide (3AB), effectively reduced photoreceptor cell loss in the rd2 retina. Notably, rd2 retinas exhibited decreased cone density, but treatment with PARP inhibitors significantly protected cone photoreceptors. The PARP inhibitors, particularly BMN-673, demonstrated a significant protective effect as evidenced by increased rhodopsin expression within the outer segment and a concurrent decrease in Müller cell activity indicated by GFAP expression. The treatment also resulted in significant changes for markers of oxidative stress, such as glutathione (GSH), and oxidized glutathione (GSSG). Notably, the administration of PARP inhibitors also reduced CD9 expression (extracellular vesicle marker), which were significantly increased within the outer nuclear layer (ONL) in the rd2 retinas. Among PARP inhibitors, BMN-673 demonstrated the highest efficacy in preserving photoreceptors, particularly benefiting cone cells.
Insights
Poly-ADP-ribose polymerase (PARP) inhibitors protect photoreceptors, including cones, from degeneration in the rd2 mouse model. BMN-673 showed the highest efficacy in preserving retinal cells and reducing oxidative stress.
Area of Science:
- Ophthalmology
- Genetics
- Pharmacology
Background:
- The rd2 mouse model displays progressive retinal degeneration due to a Prph2 gene mutation.
- While rod degeneration is linked to PARP activity, cone degeneration mechanisms in rd2 mice are unknown.
- The efficacy of PARP inhibition on cone degeneration in this model is undetermined.
Purpose of the Study:
- To investigate the role of PARP activity in cone degeneration in rd2 mice.
- To evaluate the therapeutic potential of PARP inhibitors in preventing photoreceptor loss in rd2 retinas.
Main Methods:
- Treatment of rd2 mice with PARP inhibitors (Olaparib, BMN-673, 3-AB).
- Assessment of photoreceptor cell loss, cone density, rhodopsin expression, Müller cell activity (GFAP), oxidative stress markers (GSH/GSSG), and CD9 expression.
- Comparison of the efficacy of different PARP inhibitors.
Main Results:
- PARP inhibitors significantly reduced photoreceptor cell loss in rd2 retinas.
- Cone photoreceptors were protected by PARP inhibitor treatment, with BMN-673 showing the highest efficacy.
- Treatment decreased oxidative stress markers and CD9 expression, while increasing rhodopsin expression and reducing GFAP.
Conclusions:
- PARP inhibition effectively protects both rod and cone photoreceptors from degeneration in the rd2 mouse model.
- BMN-673 demonstrates significant therapeutic potential for treating retinal degeneration associated with Prph2 mutations.
- PARP inhibition may represent a viable strategy for managing retinal degenerative diseases involving photoreceptor dysfunction.

