S. Spaag, W.-H. Wu, J. Yun, T. Winogrodzki, A. S. Knudsen, M. Fuso, K. Stingl, G. Komissarov, A. Armento, B. Baumann, L. Kuehlewein, C. Ayuso, L. Fernandez-Caballero, R. Collin, Z. Corradi, S. Roosing, M. Kaltak, C. Lochmann, F. Radboudumc, S. Banfi, M. Karali, S. Bolz, F. Simonelli, K. Dave, S. Kohl, E. Zrenner, A. Demirkol, K. Achberger, B. Wissinger, S. H. Tsang, P. De Angeli
Autosomal dominant retinitis pigmentosa (adRP) caused by RHO mutations is a leading form of inherited retinal degeneration. Extensive allelic heterogeneity of RHO pathogenic variants limits the translational applicability of mutation-specific gene therapies. To address this, we developed SNARE (SNP-guided Silencing of Aberrant RHO Expression), a mutation-independent, allele-specific antisense oligonucleotide (ASO) strategy. SNARE selectively suppresses mutant RHO transcripts by targeting the common, benign c.-26A/G single-nucleotide polymorphism (SNP) as an allelic discriminator. Candidate gapmer ASOs were screened in engineered reporter lines and validated in patient-derived retinal organoids, identifying RHOligo-A as the lead c.-26A-targeting candidate. In vitro, RHOligo-A achieved robust, preferential knockdown of the target allele, improving RHO localization in retinal organoids, and demonstrated a favorable safety profile with minimal transcriptomic off-target effects and no detectable immunostimulatory activity. Subsequent validation in a novel, humanized RHOP347L/WT mouse model, achieved sustained c.-26A-linked allele-selective suppression, retinal structure preservation, and significantly restored visual function, upon a single intravitreal administration. These findings establish RHOligo-A and SNARE as a scalable, mutation-independent therapeutic platform with strong translational potential and substantial clinical reach for RHO-associated adRP.