Abstract
<jats:p>Most recessive inherited retinal dystrophies are, in principle, amenable to gene augmentation, yet only one such therapy has received regulatory approval. We sought to identify tractable autosomal recessive retinitis pigmentosa (RP) genes that could be treated using existing non-proprietary adeno-associated virus (AAV) components. More than 100 RP-associated genes were prioritized according to cellular expression, coding-sequence size, and the availability of cell type-specific promoters, yielding 19 candidate genes expressed predominantly in rods and/or retinal pigment epithelium (RPE). In rhesus monkey eyes, the human RHO and BEST1 promoters drove rod- and RPE-specific expression, respectively, whereas the GFAP and RLBP1 promoters were limited by absent Muller glial expression or dose-associated RPE toxicity. We selected PDE6B as a proof-of-concept gene and evaluated AAV8-RHO-PDE6B after neonatal subretinal delivery. The vector effectively preserved outer nuclear layer structure, electroretinography responses, and visually guided behaviors in rd1 and rd10 mice for at least 6 months. Dose-ranging studies identified retinal abnormalities at the higher doses, whereas the lower doses were comparatively well tolerated in eyes of mice and rhesus monkeys. Together, these findings define a preclinical framework for developing gene-augmentation vectors for a subset of early-stage autosomal recessive RP patients.</jats:p>