Retinal Progenitor Cells

Retinal progenitor cells are developing, multipotent cells that generate the neurons and supporting cells of the retina, making them important for understanding visual system formation and repair. Their fate depends on intrinsic gene programs and environmental signals that regulate proliferation, migration, and differentiation into cell types such as photoreceptors, bipolar cells, and retinal ganglion cells. In biology research, these cells help model retinal development, study mechanisms of eye disease, and evaluate strategies for replacing damaged tissue. Their controlled differentiation also supports investigations into cell-based therapies and drug testing for conditions that cause vision loss.

Retinal Progenitor Cells - Related Videos

Research

JoVE Journal - Neuroscience

Single-cell Profiling of Developing and Mature Retinal Neurons

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Cited by 13 •

2012

A method for the isolation of single retinal cells and subsequent amplification of their cDNAs is described. Single-cell transcriptomics reveals the degree of cellular heterogeneity present in a tissue and uncovers new marker genes for rare cell populations. The accompanying protocol can be adjusted to suit many different cell types.

Differentiation of Neural Progenitor Cells into Neurons

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2025

The video showcased a cell culture method for differentiating neural progenitor cells into neurons. By incubating cells in a nutrient-rich medium supplemented with growth factors, the progenitor cells matured into neurons with developed axons and dendrites. A stabilizing agent ensured cell viability and protected against oxidative damage throughout the differentiation process.

In Vivo Imaging of Transgenic Gene Expression in Individual Retinal Progenitors in Chimeric Zebrafish Embryos to Study Cell Nonautonomous Influences

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Cited by 2 •

2017

Live tracking of individual WT retinal progenitors in distinct genetic backgrounds allows for the assessment of the contribution of cell non-autonomous signaling during neurogenesis. Here, a combination of gene knockdown, chimera generation via embryo transplantation and in vivo time-lapse confocal imaging was utilized for this purpose.

Research

JoVE Journal - Biology
Free Sample

In utero and ex vivo Electroporation for Gene Expression in Mouse Retinal Ganglion Cells

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Cited by 30 •

2009

Here we present two techniques for manipulating gene expression in murine retinal ganglion cells (RGCs) by in utero and ex vivo electroporation. These techniques enable one to examine how alterations in gene expression affect RGC development, axon guidance, and functional properties.

Live Cell Imaging of Muller Glial Nuclear Migration During Zebrafish Retinal Regeneration

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2025

Source: Lahne, M., et.al. Culture of Adult Transgenic Zebrafish Retinal Explants for Live-cell Imaging by Multiphoton Microscopy. J. Vis. Exp. (2017)This video demonstrates live-cell imaging of Muller glial nuclear migration in agarose-embedded zebrafish retinal explants following light-induced photoreceptor damage. Tumor necrosis factor-alpha (TNF-α) released by damaged photoreceptors activates Muller glial cells, triggering nuclear migration through the inner and outer nuclear layers for...

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