C L Hehr, S Sanyal, S Storey, S Selje, S McFarlane
Vision depends on the function of retinal circuits, supported by the retinal pigment epithelium (RPE) that lines the back of the eye. This single-cell layer thick epithelium provides growth factors and nutrients for the underlying photoreceptors, phagocytoses shed photoreceptor outer segment debris, and contributes to the blood-retinal barrier. Whether the cells of the RPE represent a single homogeneous population or represent distinct functional entities or states is poorly understood. Here, we use single cell RNA sequencing (scRNAseq) data from our mature 5-day post-fertilization zebrafish retina dataset and a publicly available adult zebrafish eye dataset, alongside in situ hybridization, to explore the transcriptomic diversity of RPE cells, its emergence over development, and its persistence into the adult. We identify 6 transcriptomically distinct RPE populations in the 5 day larval eye, representing either RPE subtypes or states, that exhibit different localization within the eye. Specifically, we find potential proliferative, iris-associated, dorso-ventral differentiating, and mature RPE subpopulations. These populations appear to emerge via separate developmental trajectories and may be distinct from the transcriptomic RPE subpopulations of the adult eye.