Glial Feeder Cells

Glial feeder cells are supportive glial cells cultured with neurons or neural progenitors to create a more physiologically relevant environment for growth, survival, and maturation. They work by supplying trophic factors, extracellular matrix components, and metabolic support while regulating local conditions that influence neuronal adhesion, differentiation, and synaptic development. In neuroscience, astrocyte- or other glia-based feeder layers help maintain primary neurons, expand neural stem cells, and improve the reproducibility of in vitro models. These co-culture systems support studies of neural development, connectivity, neurotoxicity, and disease mechanisms, while also providing platforms for testing drugs and cell-based therapies.

Glial Feeder Cells - Related Videos

Research

JoVE Journal - Biology
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Feeder-Free Adaptation, Culture and Passaging of Human IPS Cells using Complete KnockOut Serum Replacement Feeder-Free Medium

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Cited by 14 •

2010

The following protocol provides instruction for adapting human induced Pluripotent Stem (iPS) Cells to feeder-free culture using complete KnockOut Serum Replacement Feeder-Free medium (KSR-FF). Once adapted, instructions for continual maintenance are also provided.

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JoVE Core - Biology

Glial Cells

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2025

Overview Glial cells are one of the two main types of cells in the nervous system. Glia cells comprise astrocytes, oligodendrocytes, microglia, and ependymal cells in the central nervous system, and satellite and Schwann cells in the peripheral nervous system. These cells do not communicate via electrical signals like neurons do, but they contribute to virtually every other aspect of nervous system function. In humans, the number of glial cells is roughly equal to the number of neurons in the...

Feeder-free Derivation of Neural Crest Progenitor Cells from Human Pluripotent Stem Cells

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Cited by 24 •

2014

Neural crest (NC) cells derived from human pluripotent stem cells (hPSC) have great potential for modeling human development and disease and for cell replacement therapies. Here, a feeder-free adaptation of the currently widely used in vitro differentiation protocol for the derivation of NC cells from hPSCs is presented.

Isolating Enteric Glial Cells From the Submucosa and Lamina Propria of a Mouse

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2025

This video demonstrates a method for isolating enteric glial cells from the submucosa and lamina propria of the mouse intestine. It outlines the steps involved in extracting submucosa and lamina propria tissue, isolating the enteric glial cells from them, and culturing the cells on a coated well-plate to establish an enteric glial cell culture.

Immunofluorescence Staining of Drosophila Brains for the Single-Cell Imaging of Glial Cells

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2025

This video demonstrates the immunofluorescence staining of a transgenic Drosophila brain for single-cell imaging of glial cells. The brain expresses membrane-targeted proteins fused with different combinations of antigenic epitopes under the control of a glial-specific recombinase system. The isolated and fixed brains are stained with primary antibodies specific to the antigenic epitopes, followed by fluorophore-conjugated secondary antibodies. This labeling enables the simultaneous imaging of...

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