Ependymal Cells

Ependymal cells are specialized glial cells that line the brain’s ventricular system and spinal cord’s central canal, where they help organize the interface between nervous tissue and cerebrospinal fluid (CSF). Their apical cilia beat in coordinated patterns to circulate CSF, while cell junctions regulate exchange between the fluid and surrounding neural tissue; modified ependymal cells in the choroid plexus also contribute to CSF production. These functions support nutrient distribution, waste movement, and pressure regulation within the central nervous system. Studying ependymal cells helps explain hydrocephalus, neuroinflammation, neural repair, and their potential role in adult neural stem-cell biology.

Ependymal Cells - Related Videos

Research

JoVE EoE - Neuroimaging

Live Imaging of Ependymal Cell Ciliary Activity in a Mouse Brain Section

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2025

Source: Al Omran, A. J., et al. Live Imaging of the Ependymal Cilia in the Lateral Ventricles of the Mouse Brain. J. Vis. Exp. (2015). This video demonstrates a live-imaging technique using differential interference contrast (DIC) microscopy to observe the beating of ependymal cilia in sagittal mouse brain sections. Ependymal cilia propel cerebrospinal fluid (CSF), and their activity is recorded in brain sections maintained in a nutrient-rich medium and imaged in a climate-controlled chamber.

Research

JoVE Journal - Neuroscience
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The Subventricular Zone En-face: Wholemount Staining and Ependymal Flow

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Cited by 199 •

2010

The lateral ventricle walls contain the largest germinal region in the adult mammalian brain. Traditionally, studies on neurogenesis in this region have relied on classical sectioning techniques for histological analysis. Here we present an alternative approach, the wholemount technique, which provides a comprehensive, en-face view of this germinal region.

Live Imaging of the Ependymal Cilia in the Lateral Ventricles of the Mouse Brain

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Cited by 12 •

2015

Using high-resolution differential interference contrast (DIC) microscopy, an ex vivo observation of the beating of motile ependymal cilia located within the mouse brain ventricles is demonstrated by live-imaging. The technique allows a recording of the unique ciliary beating frequency and beating angle as well as their intracellular calcium oscillation pacing properties.

Stable and Efficient Genetic Modification of Cells in the Adult Mouse V-SVZ for the Analysis of Neural Stem Cell Autonomous and Non-autonomous Effects

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Cited by 2 •

2016

Here we describe a procedure based on the use of lentiviral particles for the long-term genetic modification of neural stem cells and/or their adjacent ependymal cells in the adult ventricular-subventricular neurogenic niche which allows the separate analysis of cell autonomous and non-autonomous, niche-dependent effects on neural stem cells.

Tractable In Vivo Reprogramming of Tumor Cells to Type 1 Conventional Dendritic Cell-like Cells

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2025

This protocol describes the in vivo reprogramming of mouse cancer cells into type 1 dendritic-like cells within the tumor microenvironment through enforced expression of the transcription factors PU.1, IRF8, and BATF3.

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