Retinal glial cells in glaucoma and age-related retinal diseases: Inflammatory responses, disease transitions, and translational perspectives

神经科学 视网膜 神经炎症 疾病 重编程 医学 炎症 黄斑变性 视网膜 小胶质细胞 从长凳到床边 生物 转化研究 胶质增生 青光眼 生物信息学 转化医学 生物标志物 神经再生 免疫学 蛋白质组学 星形胶质细胞 多发性硬化 计算生物学 翻译科学 淋巴系统
作者
Akanksha Salkar,Viswanthram Palanivel,Devaraj Basavarajappa,Benjamin Heng,Angela Schulz,Vivek K. Gupta,S GRAHAM,Mehdi Mirzaei,Yuyi You
出处
期刊:Neural Regeneration Research [Medknow]
标识
DOI:10.4103/nrr.nrr-d-25-01905
摘要

Microglia, Müller cells, and astrocytes play a crucial role in maintaining retinal structure, homeostasis, and neuronal function. In disease, they undergo reprogramming that drives chronic inflammation and neurodegeneration. Unique to the retina, these glial cells occupy specialized niches and interact closely with the blood-retinal barrier, creating distinct vulnerabilities. We summarized the glial activation mechanisms, shared triggers, including oxidative stress, metabolic dysfunction, aging, and systemic inflammation, as well as key pathways, such as nuclear factor kappa-B, mitogen-activated protein kinase, Janus kinase/signal transducer and activator of transcription, the inflammasome, and the complement system. Disease-specific responses in glaucoma, age-related macular degeneration, diabetic retinopathy, and vascular occlusions were compared, highlighting the heterogeneity of gliosis and its impact on neuronal and vascular pathology. We also discussed emerging human-derived platforms alongside proteomics approaches, highlighting their utility for mechanistic insights and discovering biomarkers. Despite advances, critical gaps remain in understanding glial-glial interactions and in developing robust models focused on glia. Despite these advances, major gaps remain in our understanding of glial-glial communication, state transitions, and their temporal relationship to neurodegeneration. Moreover, the lack of experimental models explicitly designed to interrogate glial biology continues to limit translational progress. Addressing these challenges will be essential to reposition glial cells as central drivers of retinal disease rather than secondary responders. A strategic shift toward glia-centered models, integrative multi-omics analyses, and human-relevant systems holds promise for advancing biomarker discovery and developing targeted therapeutic strategies that aim to modulate glial dysfunction and preserve vision.

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