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Organotypic Retinal Explant Cultures from Macaque Monkey
Published on: August 24, 2022
Olaparib significantly delays photoreceptor loss in a model for hereditary retinal degeneration
Ayse Sahaboglu1, Melanie Barth1,2, Enver Secer1,3
1Institute for Ophthalmic Research, Tuebingen, Germany.
Abstract:
The enzyme poly-ADP-ribose-polymerase (PARP) mediates DNA-repair and rearrangements of the nuclear chromatin. Generally, PARP activity is thought to promote cell survival and in recent years a number of PARP inhibitors have been clinically developed for cancer treatment. Paradoxically, PARP activity is also connected to many diseases including the untreatable blinding disease Retinitis Pigmentosa (RP), where PARP activity appears to drive the pathogenesis of photoreceptor loss. We tested the efficacy of three different PARP inhibitors to prevent photoreceptor loss in the rd1 mouse model for RP. In retinal explant cultures in vitro, olaparib had strong and long-lasting photoreceptor neuroprotective capacities. We demonstrated target engagement by showing that olaparib reduced photoreceptor accumulation of poly-ADP-ribosylated proteins. Remarkably, olaparib also reduced accumulation of cyclic-guanosine-monophosphate (cGMP), a characteristic marker for photoreceptor degeneration. Moreover, intravitreal injection of olaparib in rd1 animals diminished PARP activity and increased photoreceptor survival, confirming in vivo neuroprotection. This study affirms the role of PARP in inherited retinal degeneration and for the first time shows that a clinically approved PARP inhibitor can prevent photoreceptor degeneration in an RP model. The wealth of human clinical data available for olaparib highlights its strong potential for a rapid clinical translation into a novel RP treatment.
Insights
Olaparib, a PARP inhibitor, demonstrated significant neuroprotection against photoreceptor loss in a Retinitis Pigmentosa mouse model. This finding suggests potential for treating inherited retinal degeneration.
Area of Science:
- Biochemistry
- Neuroscience
- Ophthalmology
Background:
- Poly-ADP-ribose-polymerase (PARP) is involved in DNA repair and chromatin regulation.
- PARP inhibitors are used in cancer therapy, but PARP activity also drives photoreceptor loss in Retinitis Pigmentosa (RP).
Purpose of the Study:
- To evaluate the efficacy of PARP inhibitors in preventing photoreceptor degeneration in the rd1 mouse model of RP.
- To investigate the therapeutic potential of olaparib for inherited retinal diseases.
Main Methods:
- Testing three PARP inhibitors in vitro using retinal explant cultures from rd1 mice.
- Assessing target engagement by measuring poly-ADP-ribosylated proteins and cyclic-guanosine-monophosphate (cGMP) levels.
- Administering olaparib via intravitreal injection in rd1 mice to evaluate in vivo efficacy.
Main Results:
- Olaparib exhibited potent and sustained photoreceptor neuroprotection in vitro.
- Olaparib reduced poly-ADP-ribosylated proteins and cGMP accumulation in photoreceptors.
- In vivo administration of olaparib decreased PARP activity and enhanced photoreceptor survival in rd1 mice.
Conclusions:
- PARP plays a critical role in inherited retinal degeneration.
- Olaparib, a clinically approved PARP inhibitor, effectively prevents photoreceptor degeneration in an RP model.
- Olaparib shows promise for rapid clinical translation as a novel treatment for RP.

