Gfap Differentiation Marker

A GFAP differentiation marker identifies glial fibrillary acidic protein, an intermediate filament protein associated with astrocytes and astrocytic identity in the nervous system. During differentiation, neural progenitors that adopt an astrocytic fate begin expressing GFAP, allowing researchers to detect this change through methods such as immunocytochemistry, immunofluorescence, or gene-expression analysis. In neuroscience, GFAP labeling helps distinguish astrocytes from neurons and other neural cell types, evaluate stem-cell or progenitor-cell differentiation, and examine astrocyte responses to injury, inflammation, or disease. As a result, GFAP provides a useful readout of astrocytic development and tissue reactivity in experimental models.

Gfap Differentiation Marker - Related Videos

Research

JoVE Journal - Biology
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Visualization and Quantification of Mesenchymal Cell Adipogenic Differentiation Potential with a Lineage Specific Marker

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Cited by 15 •

2018

Traditional methods of assessing adipogenic differentiation are cheap and easy to use, but are not specific to changes in gene expression. We have developed an assay to quantify mesenchymal cell differentiation into mature adipocytes using a lineage specific marker. This assay has diverse applications across basic research and clinical medicine.

Research

JoVE Journal - Developmental Biology

Trophoblast Cell Recovery from Angiogenesis-Tube Formation Assay for Differentiation Marker Expression Analysis

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Cited by 3 •

2024

The present protocol allows the recovery of tube-like structures formed in the classical in vitro angiogenesis-tube formation assay where cells, such as trophoblast cells, organize in capillary-like structures over a layer of extracellular basement membrane matrix. The recovered structures are used for RNA and protein isolation for various biochemical analyses.

Directed Dopaminergic Neuron Differentiation from Human Pluripotent Stem Cells

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Cited by 58 •

2014

We, based on knowledge from developmental biology and published research, developed an optimized protocol to efficiently generate A9 midbrain dopaminergic neurons from both human embryonic stem cells and human induced pluripotent stem cells, which would be useful for disease modeling and cell replacement therapy for Parkinson’s disease.

A Lentiviral Transcriptional Reporter System to Generate a Glioblastoma Stem Cell Differentiation Reporter Line

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2025

This video demonstrates a technique to generate a glioblastoma stem cell reporter line to identify the differentiation of glioblastoma stem cells (GSCs) into astroglia. It outlines the steps involved in seeding GSCs, transducing them with a lentivirus encoding GFP, and determining GFP reporter expression through flow cytometry.

Differentiating Immortalized Multipotent Otic Progenitors into Spiral Ganglion Neurons and Evaluating the Differentiation

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2025

The video demonstrates the differentiation of immortalized multipotent otic progenitors (iMOPs) into spiral ganglion neurons (SGNs) and immunofluorescence-based confirmation of the differentiation. The iMOPs are plated onto culture substrate-coated coverslips in a neuronal differentiation medium for differentiation into SGNs. The differentiated cells are labeled with antibodies specific for neuronal differentiation markers and analyzed under a microscope to confirm differentiation.

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