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Updated: Feb 19, 2026

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Published on: August 5, 2021
Molecular genetics and emerging therapies for retinitis pigmentosa: Basic research and clinical perspectives
Marina França Dias1, Kwangsic Joo2, Jessica A Kemp3
1School of Pharmacy, Federal University of Minas Gerais, Belo Horizonte, Brazil; Department of Pharmaceutical Sciences, University of California, Irvine, CA, USA.
Abstract:
Retinitis Pigmentosa (RP) is a hereditary retinopathy that affects about 2.5 million people worldwide. It is characterized with progressive loss of rods and cones and causes severe visual dysfunction and eventual blindness in bilateral eyes. In addition to more than 3000 genetic mutations from about 70 genes, a wide genetic overlap with other types of retinal dystrophies has been reported with RP. This diversity of genetic pathophysiology makes treatment extremely challenging. Although therapeutic attempts have been made using various pharmacologic agents (neurotrophic factors, antioxidants, and anti-apoptotic agents), most are not targeted to the fundamental cause of RP, and their clinical efficacy has not been clearly proven. Current therapies for RP in ongoing or completed clinical trials include gene therapy, cell therapy, and retinal prostheses. Gene therapy, a strategy to correct the genetic defects using viral or non-viral vectors, has the potential to achieve definitive treatment by replacing or silencing a causative gene. Among many clinical trials of gene therapy for hereditary retinal diseases, a phase 3 clinical trial of voretigene neparvovec (AAV2-hRPE65v2, Luxturna) recently showed significant efficacy for RPE65-mediated inherited retinal dystrophy including Leber congenital amaurosis and RP. It is about to be approved as the first ocular gene therapy biologic product. Despite current limitations such as limited target genes and indicated patients, modest efficacy, and the invasive administration method, development in gene editing technology and novel gene delivery carriers make gene therapy a promising therapeutic modality for RP and other hereditary retinal dystrophies in the future.
Insights
Retinitis Pigmentosa (RP) is a progressive vision loss disease affecting millions. Gene therapy, like Luxturna, shows promise for treating RP by correcting genetic defects, offering hope for future cures.
Area of Science:
- Ophthalmology
- Genetics
- Molecular Biology
Background:
- Retinitis Pigmentosa (RP) is a group of inherited retinal diseases causing progressive vision loss.
- Over 3000 mutations in ~70 genes are linked to RP, complicating treatment development.
- Current treatments lack efficacy as they don't target the root genetic cause.
Purpose of the Study:
- To review the current state of gene therapy for Retinitis Pigmentosa.
- To highlight the potential of gene therapy as a definitive treatment for RP.
- To discuss the challenges and future directions of gene therapy in treating inherited retinal dystrophies.
Main Methods:
- Review of current literature on Retinitis Pigmentosa treatments.
- Analysis of clinical trial data for gene therapy in hereditary retinal diseases.
- Discussion of emerging gene editing technologies and delivery systems.
Main Results:
- Voretigene neparvovec (Luxturna) demonstrated significant efficacy in a Phase 3 trial for RPE65-mediated inherited retinal dystrophy.
- Gene therapy offers a potential route to correct genetic defects underlying RP.
- Despite limitations, advancements in gene editing and delivery enhance gene therapy's prospects.
Conclusions:
- Gene therapy represents a promising therapeutic approach for Retinitis Pigmentosa.
- Ongoing technological advancements are expected to overcome current limitations in gene therapy for RP.
- The development of gene therapy holds significant potential for treating a range of hereditary retinal dystrophies.
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