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Almedawar, S.

Publications and source records attributed to Almedawar, S..

4 recordsLinked to original sources

Senescence targeting re-enables injury-responsive repair in a human RPE aging model

Aging is associated with progressive tissue dysfunction and impaired repair after injury. In the retinal pigment epithelium (RPE), these changes contribute to age-related macular degeneration (AMD), yet the mechanisms limiting repair remain incompletely understood. Here, we establish a longitudinal human embryonic stem cell (hESC)-derived RPE aging model that recapitulates key features of aged human donor RPE and combine it with mosaic cell ablation to assess injury-responsive repair. Although aged RPE cells initiate DNA synthesis after injury, they exhibit impaired mitotic progression, uncoupling S-phase entry from epithelial repopulation. Transcriptomic profiling links this defect to a senescence-associated program marked by inflammatory signaling and suppressed mitotic networks. Pharmacologic reduction of senescent cells with Navitoclax shifts aged RPE toward a younger transcriptional profile but does not induce repopulation by itself. Instead, senolytic treatment primes aged RPE for repair, improving epithelial density and homeostatic function only in response to injury, a strategy we term "senolytic priming." These findings establish a human stem-cell-derived platform for investigating age-associated epithelial repair failure and show that aged human RPE retains latent repair capacity that can be re-enabled by targeting cellular senescence.

Cell Biology↗

The Lipidome of iPSC-Derived Retinal Organoids and RPE Partially Resembles that of the Human Retina

New approach methodologies (NAMs), including induced pluripotent stem cell (iPSC)-derived retinal organoids (ROs) and retinal pigment epithelium (iRPE), are increasingly applied to study retinal disease mechanisms and therapeutic strategies. However, these models often remain relatively immature. Given the high lipid content and complex metabolism of the retina, it is unclear to what extent iPSC-derived systems recapitulate the human retinal lipidome. Here, we compared the lipidomic profiles of ROs and iRPE, collected at several differentiation stages, with those of post-mortem adult human macular, non-macular and RPE plus choroid (pmRPE). The lipidome of iRPE differed markedly from pmRPE, whereas prolonged differentiation of ROs resulted in a lipidomic profile increasingly resembling that of the post-mortem retina. Moreover, ROs showed similarities to both macular and non-macular lipidome. These findings show that iPSC-derived models can become valuable NAMs to study lipid-related retinal disorders and provide a framework to optimize differentiation protocols.

molecular biology↗

Long-term daily light exposure boosts photoreceptor maturation in retinal organoids

Induced pluripotent stem cell-derived retinal organoids (ROs) have become promising personalized models to study inherited retinal diseases (IRDs) and develop new innovative therapies. Although ROs mimic key retinal features and show some light responsiveness, their differentiation and maturation remain limited and lengthy. We hypothesize that standard dark culture conditions limit the expression of genes and proteins related to retinal function, delaying differentiation and complicating disease modeling. Therefore, we investigated whether daily light exposure could promote photoreceptor maturation. ROs were exposed to six hours of daily light starting from day 70 in vitro. Light conditioning led to enhanced photoreceptor maturation, specifically an increase in rod photoreceptors, a late-born cell type, without signs of increased stress or cell death. Our findings suggest that daily light exposure enhances RO differentiation, opening new avenues to investigate molecular and cellular phenotypes in IRDs and accelerate therapy development in more relevant functional models.

cell biology↗

Extensive monolayer formation depends on a subpopulation of transplanted human iPSC-derived RPE cells

Loss of the retinal pigment epithelium (RPE) in the eye leads to photoreceptor dysfunction and death causing eventually vision loss. Cell replacement strategies using RPE cells derived in vitro from pluripotent stem cells (PSCs) are currently evaluated as a potential therapeutic strategy. Generation of polarized monolayers represents an essential prerequisite for proper RPE function, however, monolayer formation following transplantation of RPE cell suspensions has not been systematically assessed. Using the sodium iodate mouse model of acute RPE depletion, significant increase in monolayer formation capacity of passage (P) 1 vs. P2 human iPSC-derived RPE cells was observed three weeks after transplantation. Transplant-derived monolayers showed characteristic apicobasal polarity, RPE marker expression, phagocytosis function, and preservation of the host outer nuclear layer. The cell surface marker panel CD54+/PSA-NCAM- was identified to enrich for an RPE subpopulation with high potential for monolayer formation following transplantation. Results underline the importance of defining and isolating competent cell subpopulations for successful RPE transplantation.

neuroscience↗