Autosomal Recessive RDH12-Leber Congenital Amaurosis Retinal Organoids Suggest Phospholipid Pathway Dysregulation

NADPH-dependent retinol dehydrogenase 12 (RDH12) reduces all-trans-retinal in photoreceptor inner segments to regulate the phototransduction cascade and control the concentration of retinoids in the retina. Variants in RDH12 have been reported to cause an array of retinal disease phenotypes, including autosomal recessive (AR) Leber congenital amaurosis (LCA), a severe form of childhood blindness, and autosomal dominant (AD) retinitis pigmentosa (RP), a milder late-onset rod-dominant disease. Animal models have failed to recapitulate the clinical phenotype; hence, we generated human induced pluripotent stem cell (hiPSC) derived retinal organoids (RO) from a patient with homozygous missense variant c.619A>G p.(Asn207Asp) in RDH12 (RDH12-AR), a patient with heterozygous c.759del p.(Phe254Leufs*24) (RDH12-AD), and an unaffected control. RDH12-AR ROs develop shortened rod and cone photoreceptors (from the outer limiting membrane to the tip of the outer segment), which lack RDH12 localisation in the inner segment. Bulk transcriptomic analysis revealed cone marker and apoptosis dysregulation in RDH12-AR ROs compared to unaffected controls, but phospholipid transport is perturbed in RDH12-AR ROs compared to RDH12-AD. Our study helps to decipher the distinct disease pathways involved in RDH12 retinopathies; however, further modelling from additional patients with isogenic controls will strengthen the findings and aid identification of targets for therapeutic approaches.

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Publication Details

Journal
International Journal of Molecular Sciences
Published
2026-10-06
DOI
https://doi.org/10.3390/ijms27198880
Primary Topic
Retinal Development and Disorders
Type
article
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article

Autosomal Recessive RDH12-Leber Congenital Amaurosis Retinal Organoids Suggest Phospholipid Pathway Dysregulation

Maria Toms, Pablo Soro-Barrio, Neelima Nair, Lyes Toualbi et al.
International Journal of Molecular Sciences
Retinal Development and Disorders
article

Autosomal Recessive RDH12-Leber Congenital Amaurosis Retinal Organoids Suggest Phospholipid Pathway Dysregulation

Maria Toms, Pablo Soro-Barrio, Neelima Nair, Lyes Toualbi, Hajrah Sarkar, Cécile Méjécase, Nicholas Owen, Riccardo Cheloni, Mariya Moosajee, Jieren Bornia, Ya Zhou
article en

Abstract

NADPH-dependent retinol dehydrogenase 12 (RDH12) reduces all-trans-retinal in photoreceptor inner segments to regulate the phototransduction cascade and control the concentration of retinoids in the retina. Variants in RDH12 have been reported to cause an array of retinal disease phenotypes, including autosomal recessive (AR) Leber congenital amaurosis (LCA), a severe form of childhood blindness, and autosomal dominant (AD) retinitis pigmentosa (RP), a milder late-onset rod-dominant disease. Animal models have failed to recapitulate the clinical phenotype; hence, we generated human induced pluripotent stem cell (hiPSC) derived retinal organoids (RO) from a patient with homozygous missense variant c.619A>G p.(Asn207Asp) in RDH12 (RDH12-AR), a patient with heterozygous c.759del p.(Phe254Leufs*24) (RDH12-AD), and an unaffected control. RDH12-AR ROs develop shortened rod and cone photoreceptors (from the outer limiting membrane to the tip of the outer segment), which lack RDH12 localisation in the inner segment. Bulk transcriptomic analysis revealed cone marker and apoptosis dysregulation in RDH12-AR ROs compared to unaffected controls, but phospholipid transport is perturbed in RDH12-AR ROs compared to RDH12-AD. Our study helps to decipher the distinct disease pathways involved in RDH12 retinopathies; however, further modelling from additional patients with isogenic controls will strengthen the findings and aid identification of targets for therapeutic approaches.

International Journal of Molecular SciencesVol. 27(19)
Moorfields Eye Hospital NHS Foundation Trust (GB), The Francis Crick Institute (GB), Moorfields Eye Hospital (GB), University College London (GB)
Openalex Percentile: Top 22%
Retinal Development and Disorders
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