Related Experiment Video
Updated: Aug 9, 2026

Migratory Behavior of Cells Generated in Ganglionic Eminence Cultures
Published on: April 21, 2011
Tangential migration of ameboid microglia in the developing quail retina: mechanism of migration and migratory
J L Marín-Teva1, A Almendros, R Calvente
1Departamento de Biología Celular, Facultad de Ciencias, Universidad de Granada, Spain.
Abstract:
Long distance migration of microglial precursors within the central nervous system is essential for microglial colonization of the nervous parenchyma. We studied morphological features of ameboid microglial cells migrating tangentially in the developing quail retina to shed light on the mechanism of migration and migratory behavior of microglial precursors. Many microglial precursors remained attached on retinal sheets containing the inner limiting membrane covered by a carpet of Müller cell endfeet. This demonstrates that most ameboid microglial cells migrate tangentially on Müller cell endfeet. Many of these cells showed a central-to-peripheral polarized morphology, with extensive lamellipodia spreading through grooves flanked by Müller cell radial processes, to which they were frequently anchored. Low protuberances from the vitreal face of microglial precursors were firmly attached to the subjacent basal lamina, which was accessible through gaps in the carpet of Müller cell endfeet. These results suggest a mechanism of migration involving polarized extension of lamellipodia at the leading edge of the cell, strong cell-to-substrate attachment, translocation of the cell body forward, and retraction of the rear of the cell. Other ameboid cells were multipolar, with lamellipodial projections radiating in all directions from the cell body, suggesting that microglial precursors explore the surrounding environment to orient their movement. Central-to-peripheral migration of microglial precursors in the retina does not follow a straight path; instead, these cells perform forward, backward, and sideways movements, as suggested by the occurrence of (a) V-shaped bipolar ameboid cells with their vertex pointing toward either the center or the periphery of the retina, and (b) threadlike processes projecting from either the periphery-facing edge or the center-facing edge of ameboid microglial cells.
Insights
Microglial precursors migrate in the developing retina along Müller cell endfeet. Their polarized morphology and attachment to the basal lamina suggest a specific migration mechanism.
Area of Science:
- Neuroscience
- Developmental Biology
- Cell Biology
Background:
- Microglial precursors migrate long distances in the central nervous system for proper colonization.
- Understanding microglial precursor migration is crucial for neurodevelopmental research.
Purpose of the Study:
- To investigate the migration mechanism and behavior of ameboid microglial precursors in the developing quail retina.
- To elucidate the role of Müller cells and the basal lamina in microglial precursor migration.
Main Methods:
- Morphological analysis of ameboid microglial cells in the developing quail retina.
- Observation of cell attachment and lamellipodial extension on retinal substrates.
Main Results:
- Microglial precursors primarily migrate tangentially on Müller cell endfeet.
- Cells exhibit polarized morphology with lamellipodia extending into Müller cell grooves and attachment to the basal lamina.
- Migration involves polarized extension, cell-substrate adhesion, forward translocation, and rear retraction.
- Multipolar cells suggest environmental exploration for directional movement.
- Non-linear migration patterns observed, including backward and sideways movements.
Conclusions:
- A migration mechanism involving polarized lamellipodia extension and strong cell-substrate attachment is proposed.
- Müller cell endfeet and basal lamina are key substrates guiding microglial precursor migration.
- Microglial precursor migration is a dynamic process involving exploration and complex movements.
Related Concept Videos
Gastrulation
Cell Migration
Cell Migration
Chemotaxis and Direction of Cell Migration

