类有机物
生物
视网膜
视网膜
细胞生物学
神经节
神经科学
视网膜神经节细胞
视网膜神经节细胞
巨大视网膜神经节细胞
解剖
视网膜变性
细胞
细胞存活
光遗传学
干细胞
再生(生物学)
视网膜波
模式生物
作者
Kritika Sharma,Rouhollah Habibey,Mariana M. Ribeiro,Bohao Cui,Rebecca A. Siwicki,Johannes Striebel,Julia Sophie Pawlick,Jasmin Zorn,Larissa Utz,Magdalena Renner,Simone Picelli,Frank G Holz,Carmen Ruiz de Almodóvar,Cameron S. Cowan,Volker Busskamp
出处
期刊:Cell Stem Cell
[Elsevier BV]
日期:2026-01-12
卷期号:33 (2): 253-271.e13
被引量:3
标识
DOI:10.1016/j.stem.2025.12.013
摘要
Retinal organoids are widely used to model human retinal development and disease, but their utility is limited by the absence of vascular networks and stable axonal projections, which contribute to retinal ganglion cell degeneration and loss of function. To address these challenges, we incorporated stem cell-derived endothelial cells to induce transient vascular-like networks and used microfluidic devices to stabilize axonal growth. The resulting organoids showed reduced hypoxia, increased size, and decreased apoptosis, indicating improved long-term survival and maturation of retinal ganglion cells. Integration with microfluidic-microelectrode arrays enabled stable recordings of spontaneous and optogenetically evoked activity, which persisted beyond the time when control organoids lost function. At later stages, these transiently vascularized organoids displayed photoreceptor-driven ON, OFF, and ON-OFF light responses, indicating circuit-level retinal activity. This bioengineered platform establishes a long-term, functional model of the human retina as a transformative tool for retinal research and therapeutic innovation.
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