Related Experiment Video
Updated: Aug 5, 2025

Organotypic Retinal Explant Cultures from Macaque Monkey
Published on: August 24, 2022
Reserpine maintains photoreceptor survival in retinal ciliopathy by resolving proteostasis imbalance and ciliogenesis
Holly Y Chen1, Manju Swaroop2, Samantha Papal1
1Neurobiology, Neurodegeneration and Repair Laboratory, National Eye Institute, National Institutes of Health, Bethesda, United States.
Abstract:
Ciliopathies manifest from sensory abnormalities to syndromic disorders with multi-organ pathologies, with retinal degeneration a highly penetrant phenotype. Photoreceptor cell death is a major cause of incurable blindness in retinal ciliopathies. To identify drug candidates to maintain photoreceptor survival, we performed an unbiased, high-throughput screening of over 6000 bioactive small molecules using retinal organoids differentiated from induced pluripotent stem cells (iPSC) of rd16 mouse, which is a model of Leber congenital amaurosis (LCA) type 10 caused by mutations in the cilia-centrosomal gene CEP290. We identified five non-toxic positive hits, including the lead molecule reserpine, which maintained photoreceptor development and survival in rd16 organoids. Reserpine also improved photoreceptors in retinal organoids derived from induced pluripotent stem cells of LCA10 patients and in rd16 mouse retina in vivo. Reserpine-treated patient organoids revealed modulation of signaling pathways related to cell survival/death, metabolism, and proteostasis. Further investigation uncovered dysregulation of autophagy associated with compromised primary cilium biogenesis in patient organoids and rd16 mouse retina. Reserpine partially restored the balance between autophagy and the ubiquitin-proteasome system at least in part by increasing the cargo adaptor p62, resulting in improved primary cilium assembly. Our study identifies effective drug candidates in preclinical studies of CEP290 retinal ciliopathies through cross-species drug discovery using iPSC-derived organoids, highlights the impact of proteostasis in the pathogenesis of ciliopathies, and provides new insights for treatments of retinal neurodegeneration.
Insights
Researchers screened over 6000 molecules to find treatments for Leber congenital amaurosis (LCA) and other retinal ciliopathies. The drug reserpine showed promise in maintaining photoreceptor survival in organoid and mouse models.
Area of Science:
- Genetics and Molecular Biology
- Neuroscience
- Stem Cell Biology
Background:
- Ciliopathies, including Leber congenital amaurosis (LCA), often cause retinal degeneration and incurable blindness due to photoreceptor cell death.
- CEP290 gene mutations are a key cause of LCA type 10, impacting cilia and centrosome function.
Purpose of the Study:
- To identify novel drug candidates for maintaining photoreceptor survival in retinal ciliopathies.
- To investigate the therapeutic potential of reserpine in preclinical models of CEP290-related retinal degeneration.
Main Methods:
- High-throughput screening of over 6000 small molecules using induced pluripotent stem cell (iPSC)-derived retinal organoids from rd16 mice (a CEP290 model).
- Testing of lead compounds, including reserpine, in patient-derived iPSC retinal organoids and in vivo rd16 mouse retina.
- Analysis of signaling pathways, autophagy, proteostasis, and primary cilium biogenesis in response to reserpine treatment.
Main Results:
- Reserpine was identified as a lead compound, demonstrating efficacy in maintaining photoreceptor development and survival in rd16 organoids and patient-derived organoids.
- Reserpine improved photoreceptor function in vivo in the rd16 mouse retina.
- Reserpine partially restored autophagic balance and improved primary cilium assembly by increasing p62 levels, impacting proteostasis.
Conclusions:
- Reserpine is a promising drug candidate for treating CEP290-related retinal ciliopathies.
- Proteostasis and autophagy play critical roles in ciliopathy pathogenesis, offering therapeutic targets.
- iPSC-derived organoids provide a valuable platform for cross-species drug discovery in retinal neurodegenerative diseases.
Related Concept Videos
Photoreceptors and Visual Pathways
GPCR Desensitization

