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Updated: Jul 14, 2026

A Rhodopsin Transport Assay by High-Content Imaging Analysis
Published on: January 16, 2019
RNA interference-mediated suppression and replacement of human rhodopsin in vivo
Mary O'Reilly1, Arpad Palfi, Naomi Chadderton
1Smurfit Institute of Genetics, Trinity College, Dublin, Ireland. oreillym@tcd.ie
Abstract:
Mutational heterogeneity represents a significant barrier to development of therapies for many dominantly inherited diseases. For example, >100 mutations in the rhodopsin gene (RHO) have been identified in patients with retinitis pigmentosa (RP). The development of therapies for dominant disorders that correct the primary genetic lesion and overcome mutational heterogeneity is challenging. Hence, therapeutics comprising two elements--gene suppression in conjunction with gene replacement--have been investigated. Suppression is targeted to a site independent of the mutation; therefore, both mutant and wild-type alleles are suppressed. In parallel with suppression, a codon-modified replacement gene refractory to suppression is provided. Both in vitro and in vivo validation of suppression and replacement for RHO-linked RP has been undertaken in the current study. RNA interference (RNAi) has been used to achieve ~90% in vivo suppression of RHO in photoreceptors, with use of adeno-associated virus (AAV) for delivery. Demonstration that codon-modifed RHO genes express functional wild-type protein has been explored transgenically, together with in vivo expression of AAV-delivered RHO-replacement genes in the presence of targeting RNAi molecules. Observation of potential therapeutic benefit from AAV-delivered suppression and replacement therapies has been obtained in Pro23His mice. Results provide the first in vivo indication that suppression and replacement can provide a therapeutic solution for dominantly inherited disorders such as RHO-linked RP and can be employed to circumvent mutational heterogeneity.
Insights
Gene suppression and replacement therapies offer a promising solution for dominant inherited diseases like retinitis pigmentosa (RP). This dual approach effectively overcomes genetic mutations, paving the way for new therapeutic strategies.
Area of Science:
- Genetics
- Ophthalmology
- Molecular Biology
Background:
- Dominantly inherited diseases, such as retinitis pigmentosa (RP) caused by rhodopsin gene (RHO) mutations, present therapeutic challenges due to mutational heterogeneity.
- Developing treatments that correct genetic defects while addressing diverse mutations is complex.
Purpose of the Study:
- To investigate the efficacy of a combined gene suppression and replacement strategy for treating RHO-linked RP.
- To validate this dual therapeutic approach both in vitro and in vivo, addressing mutational heterogeneity.
Main Methods:
- Utilized RNA interference (RNAi) for in vivo suppression of RHO alleles (~90% efficiency) in photoreceptors via adeno-associated virus (AAV) delivery.
- Developed and tested codon-modified RHO replacement genes resistant to suppression.
- Validated gene replacement and suppression in a Pro23His mouse model of RP.
Main Results:
- Achieved significant in vivo suppression of RHO using RNAi delivered by AAV.
- Demonstrated expression of functional wild-type rhodopsin from codon-modified replacement genes.
- Observed therapeutic benefits in Pro23His mice treated with AAV-delivered suppression and replacement therapies.
Conclusions:
- The combined gene suppression and replacement strategy shows potential as a therapeutic solution for dominantly inherited disorders like RHO-linked RP.
- This approach effectively circumvents the challenge of mutational heterogeneity in genetic diseases.
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