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Updated: Jun 16, 2026

Culturing Microglia from the Neonatal and Adult Central Nervous System
Published on: August 9, 2013
Epigenetic control of microglial developmental milestones from proliferative progenitors to efficient phagocytes
Marta Pereira-Iglesias1,2, Duncan Martinson3, Carles Falco4
1Achucarro Basque Center for Neuroscience, Science Park University of the Basque Country EHU/UPV, Leioa, Spain.
Abstract:
Early immune perturbations increase the risk of neurodegenerative and neurodevelopmental disorders, yet the mechanisms underlying the maturation of microglia, the resident immune cells of the brain parenchyma, remain poorly defined. Specifically, how proliferation, morphological differentiation, and phagocytosis are coordinated among microglia progenitors as they colonize the embryonic brain remains unclear. Here, we combined mathematical modeling with spatiotemporal analyses of the murine hippocampus and cerebellum from postnatal day 2 (P2) to P60 to reconstruct the trajectory of microglial development. We identified a proliferative-to-quiescent (P/Q) switch around P3/P4 that preceded the acquisition of morphological complexity and efficient phagocytosis and was accompanied by coordinated shifts in cell-cycle dynamics and metabolic state. Strikingly, this P/Q switch was recapitulated in repopulation contexts in mice and in the human fetal brain, where later stages displayed enhanced phagocytic function coupled to reduced proliferation. Perturbing the proliferative phase through pharmacological or genetic disruption of CSF1R signaling impaired subsequent microglial complexity and phagocytosis efficiency, revealing an unexpected reliance of phagocytosis on proliferation-driven colonization. Finally, we show that microglia stepwise maturation during development is associated with chromatin remodeling and driven by the epigenetic regulator Ikaros. Together, these findings uncover the sequential milestones of microglial development, revealing a potential period of early vulnerability and establishing an unexpected linkage between proliferation and phagocytosis essential to understanding how these processes are coordinated in neurodegenerative disorders.
Insights
Microglia development involves a crucial switch from proliferation to quiescence, which is essential for their maturation and function in the brain. This process, driven by the epigenetic regulator Ikaros, impacts neurodevelopmental and neurodegenerative disorders.
Area of Science:
- Neuroscience
- Immunology
- Developmental Biology
Background:
- Early immune system changes are linked to neurodevelopmental and neurodegenerative diseases.
- The maturation process of microglia, the brain's immune cells, is not well understood.
- Coordination of microglial progenitor proliferation, differentiation, and phagocytosis during brain development is unclear.
Purpose of the Study:
- To reconstruct the developmental trajectory of microglia.
- To identify key molecular and cellular events coordinating microglial maturation.
- To understand the link between microglial proliferation and phagocytosis in brain development and disease.
Main Methods:
- Mathematical modeling and spatiotemporal analysis of murine hippocampus and cerebellum (P2-P60).
- Analysis of microglial development in repopulation contexts and human fetal brain.
- Pharmacological and genetic disruption of CSF1R signaling.
- Chromatin remodeling and epigenetic analysis focusing on Ikaros.
Main Results:
- A proliferative-to-quiescent (P/Q) switch around P3/P4 precedes morphological complexity and phagocytosis acquisition.
- This P/Q switch is conserved in repopulation models and human fetal brain development.
- Impaired proliferation via CSF1R inhibition reduces microglial complexity and phagocytosis.
- Microglial maturation is associated with chromatin remodeling and driven by the epigenetic regulator Ikaros.
Conclusions:
- Microglial development follows sequential milestones, including a critical P/Q switch.
- Phagocytosis efficiency is unexpectedly dependent on proliferation-driven colonization.
- Microglial maturation is epigenetically regulated by Ikaros, highlighting a potential period of early vulnerability in neurodevelopmental and neurodegenerative disorders.
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