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Updated: Jan 26, 2026

Author Spotlight: Induced Microglia-Like Cell Technology to Shed Light on the Role of Microglial Dysfunction in Neuropsychiatric Disorders
Published on: September 6, 2024
Microglia: Brain cells on the move
Sophie Marie-Thérèse Smolders1, Sofie Kessels2, Tim Vangansewinkel2
1UHasselt, BIOMED, Diepenbeek, Belgium; INSERM, UMR-S 1130, CNRS, UMR 8246, Neuroscience Paris Seine, Institute of Biology Paris Seine, Paris, France; Sorbonne Universités, UPMC Université Paris 06, UM CR18, Neuroscience Paris Seine, Paris, France.
Abstract:
In the last decade, tremendous progress has been made in understanding the biology of microglia - i.e. the fascinating immigrated resident immune cell population of the central nervous system (CNS). Recent literature reviews have largely dealt with the plentiful functions of microglia in CNS homeostasis, development and pathology, and the influences of sex and the microbiome. In this review, the intriguing aspect of their physical plasticity during CNS development will get specific attention. Microglia move around (mobility) and reshape their processes (motility). Microglial migration into and inside the CNS is most prominent throughout development and consequently most of the data described in this review concern mobility and motility in the changing environment of the developing brain. Here, we first define microglia based on their highly specialized age- and region-dependent gene expression signature and associated functional heterogeneity. Next, we describe their origin, the migration route of immature microglial cells towards the CNS, the mechanisms underlying their invasion of the CNS, and their spatiotemporal localization and surveying behaviour inside the developing CNS. These processes are dependent on microglial mobility and motility which are determined by the microenvironment of the CNS. Therefore, we further zoom in on the changing environment during CNS development. We elaborate on the extracellular matrix and the respective integrin receptors on microglia and we discuss the purinergic and molecular signalling in microglial mobility. In the last section, we discuss the physiological and pathological functions of microglia in which mobility and motility are involved to stress the importance of microglial 'movement'.
Insights
Microglia, the central nervous system (CNS) immune cells, exhibit remarkable physical plasticity during development. This review focuses on their crucial mobility and motility, essential for CNS development and function.
Area of Science:
- Neuroscience
- Immunology
- Developmental Biology
Background:
- Microglia are the resident immune cells of the central nervous system (CNS).
- Recent research has explored their roles in CNS homeostasis, development, and pathology.
- Their physical plasticity, including mobility and motility, is critical but less emphasized.
Purpose of the Study:
- To review the physical plasticity of microglia during CNS development.
- To highlight the importance of microglial mobility and motility.
- To explore the environmental factors influencing these cellular behaviors.
Main Methods:
- Literature review focusing on microglial biology during CNS development.
- Analysis of gene expression signatures defining microglial heterogeneity.
- Discussion of cellular migration mechanisms and environmental interactions.
Main Results:
- Microglial migration into and within the developing CNS is prominent.
- Mobility and motility are influenced by the CNS microenvironment, including extracellular matrix and signaling pathways.
- Specific gene expression patterns define age- and region-dependent microglial functions.
Conclusions:
- Microglial mobility and motility are fundamental to their role in CNS development.
- Understanding these dynamic processes is key to comprehending microglial functions in both health and disease.
- The CNS microenvironment significantly shapes microglial behavior and specialization.
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