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Isolation and Culture of Mouse Cortical Astrocytes
Published on: January 19, 2013
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Cortical astrocytes develop in a plastic manner at both clonal and cellular levels.
Solène Clavreul1, Lamiae Abdeladim2, Edwin Hernández-Garzón3
1Sorbonne Université, INSERM, CNRS, Institut de la Vision, 17 rue Moreau, Paris, F-75012, France.
Nature Communications
|October 27, 2019
Summary
New research reveals how astrocyte development in the mouse cortex involves intermingling clones and diverse cell generation. Ventricular progenitors contribute to the astroglial network both before and after birth.
Area of Science:
- Neuroscience
- Developmental Biology
- Cell Biology
Background:
- Astrocytes are crucial glial cells in neural tissue, forming a complex network with significant local variations.
- Understanding astrocyte development and network formation is key to comprehending brain function.
Purpose of the Study:
- To investigate the developmental processes of astrocytes in the mouse cortex.
- To analyze astrocyte clonal expansion, spatial organization, and cell subtype generation.
- To identify the origin and contribution of progenitors to the astroglial network.
Main Methods:
- Multiclonal lineage tracing using combinatorial genetic markers.
- Large-volume, multicolor imaging techniques for high-resolution visualization.
- Analysis of astrocyte morphology and spatial distribution in the developing neocortex.
Main Results:
- Cortical astrocyte clones exhibit intermingling and significant variability in cell number, spatial arrangement, and subtype differentiation.
- Astrocyte development involves 3D spatial dispersion and progressive acquisition of complex cell morphology.
- Ventricular progenitors supply the astroglial network both prenatally and postnatally, generating both protoplasmic and pial astrocyte subtypes.
Conclusions:
- Astrocyte precursors colonize the neocortex in a non-ordered, perinatal manner.
- The local microenvironment likely influences astrocyte clonal growth and the final cell morphotype.
- This study proposes a model for astrocyte network development and heterogeneity.
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