Aug 2026· PLoS ONE· Vol 21, pp. e0356284· 0 citations· 32 references
Medicine
TL;DR
The results highlight RIP3 as a potential contributing factor in the progression of retinal degeneration and introduce biologically relevant transgenic models that capture both slow and accelerated disease progression.
Abstract
Dry age-related macular degeneration (AMD) is a leading cause of blindness, characterized by progressive loss of retinal pigment epithelium (RPE) and subsequent photoreceptor degeneration. Current experimental models, including sodium iodate-induced injury, fail to fully recapitulate the chronic, age-related progression of the human disease. Although RIP3-mediated necroptosis has been strongly implicated in RPE cell death, its direct contribution to retinal degeneration in vivo remains unclear. To address this limitation, we generated two RIP3 transgenic mouse lines with distinct patterns of RIP3 overexpression. While RIP3-Tg mice exhibit systemic RIP3 overexpression, RIP3-Tg-RPE mice display additional RPE-specific overexpression beyond the levels observed in RIP3-Tg mice. We then evaluated these transgenic lines, along with wild-type controls, for age-driven retinal degeneration by using optical coherence tomography (OCT), behavior-based visual function assays, and molecular profiling of inflammation and cell death. First, RIP3-Tg mice exhibited gradual retinal thinning, progressive visual decline, and sustained upregulation of pro-inflammatory cytokines (IL-1β, TNF-α, and IL-6) over 6–15 months, recapitulating the slow progression of dry-AMD. Second, RIP3-Tg-RPE mice, which exhibit further RPE-specific increases in RIP3 expression, showed markedly accelerated retinal degeneration, with significant structural and functional deficits evident as early as 2 months of age. These findings indicate that ectopic RIP3 expression in the RPE contributes to inflammatory responses and subsequent retinal degeneration. Collectively, our results highlight RIP3 as a potential contributing factor in the progression of retinal degeneration and introduce biologically relevant transgenic models that capture both slow and accelerated disease progression. These models provide a valuable platform for investigating disease mechanisms and developing therapeutic strategies targeting necroptosis in dry-AMD.
Many genes involved in inherited diseases produce alternate mRNA isoforms that remain poorly characterized. Functional assessment of these isoforms could therefore unlock new insights into disease pathobiology or treatment. Here we investigated the function of the newly discovered “B” isoform of CRB1, a gene implicated...
Ekta Dembla, Juan C. Valdez-Lopez, Christopher Kozlowski et al.· bioRxiv· 0 citations
Age-related macular degeneration (AMD) is a multifactorial retinal disease that causes progressive vision loss, with retinal pigment epithelium (RPE) atrophy representing a key initiating event. The RPE monolayer plays a crucial role in maintaining photoreceptor and choriocapillaris health and function. In advanced AMD...
Sudipta Mahato, Elena Daniele, Colby F. Lewallen et al.· Annual Review of Vision Scie...· 0 citations
Findings reveal a lipid-mediated mechanism that drives microglial phenotypic switching and provide a more physiologically relevant in vivo model to mimic microglial activation in degenerative retinas than LPS stimulation.
Ling-Ling Ge, Dan-Yang Yu, Ling-Yan Yan et al.· Frontiers in Immunology· 0 citations
A dual-restricted ocular gene delivery platform that combines suprachoroidal administration with an RPE-specific Best1 promoter enables localized, durable, and cell-restricted SOCS3 expression, supporting suprachoroidal AAV-Best1-SOCS3 delivery for localized modulation of oxidative-inflammatory retinal degeneration.
Yiquan Zhang, Fu-Xiao Luan, Jing Feng et al.· Journal of Controlled Releas...· 0 citations
Disruption of the photoreceptor-retinal pigment epithelium (RPE) interface, with loss of photoreceptor outer segments (POSs) in the retina, is a pathological hallmark of several neurodegenerative and retinal diseases, including lysosomal storage disorders like juvenile neuronal ceroid lipofuscinosis (CLN3) disease. How...
CDHR1 is a recently identified cause of autosomal recessive retinal degeneration manifesting as three distinct clinical phenotypes: macular dystrophy, cone-rod dystrophy or retinitis pigmentosa. In this review, we summarise the discovery and characterisation of CDHR1, clinical phenotypes, natural history and therapeuti...
Akshay Narayan, Peter Charbel Issa, I. Yusuf et al.· Progress in retinal and eye...· 0 citations
We use cookies to run the site and, with your consent, for analytics and to show ads.
See our Cookie Policy.