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Updated: Apr 29, 2026

Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Fractalkine regulation of microglial physiology and consequences on the brain and behavior
Rosa Chiara Paolicelli1, Kanchan Bisht2, Marie-Ève Tremblay2
1Division of Psychiatry Research, University of Zurich Zurich, Switzerland.
Abstract:
Neural circuits are constantly monitored and supported by the surrounding microglial cells, using finely tuned mechanisms which include both direct contact and release of soluble factors. These bidirectional interactions are not only triggered by pathological conditions as a S.O.S. response to noxious stimuli, but they rather represent an established repertoire of dynamic communication for ensuring continuous immune surveillance and homeostasis in the healthy brain. In addition, recent studies are revealing key tasks for microglial interactions with neurons during normal physiological conditions, especially in regulating the maturation of neural circuits and shaping their connectivity in an activity- and experience-dependent manner. Chemokines, a family of soluble and membrane-bound cytokines, play an essential role in mediating neuron-microglia crosstalk in the developing and mature brain. As part of this special issue on Cytokines as players of neuronal plasticity and sensitivity to environment in healthy and pathological brain, our review focuses on the fractalkine signaling pathway, involving the ligand CX3CL1 which is mainly expressed by neurons, and its receptor CX3CR1 that is exclusively found on microglia within the healthy brain. An extensive literature largely based on transgenic mouse models has revealed that fractalkine signaling plays a critical role in regulating a broad spectrum of microglial properties during normal physiological conditions, especially their migration and dynamic surveillance of the brain parenchyma, in addition to influencing the survival of developing neurons, the maturation, activity and plasticity of developing and mature synapses, the brain functional connectivity, adult hippocampal neurogenesis, as well as learning and memory, and the behavioral outcome.
Insights
Microglia constantly communicate with neurons via fractalkine signaling (CX3CL1/CX3CR1) to maintain brain health. This pathway is crucial for immune surveillance, neural circuit development, and cognitive functions like learning and memory.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are essential for monitoring and supporting neural circuits in the healthy brain.
- Bidirectional neuron-microglia communication is vital for immune surveillance and homeostasis.
- Microglia play key roles in neural circuit maturation and synaptic plasticity.
Purpose of the Study:
- To review the role of fractalkine signaling in neuron-microglia crosstalk.
- To highlight the function of the CX3CL1/CX3CR1 pathway in the healthy brain.
- To explore fractalkine signaling's impact on microglial functions and neural processes.
Main Methods:
- Literature review focusing on transgenic mouse models.
- Analysis of studies investigating the CX3CL1 ligand and CX3CR1 receptor.
- Examination of research on fractalkine signaling's effects on microglial and neuronal functions.
Main Results:
- Fractalkine signaling regulates microglial migration and surveillance.
- It influences neuronal survival, synaptic maturation, and plasticity.
- The pathway impacts brain connectivity, neurogenesis, learning, and memory.
Conclusions:
- Fractalkine signaling is a critical mechanism for neuron-microglia communication in the healthy brain.
- This pathway is integral to maintaining brain homeostasis and supporting cognitive functions.
- Dysregulation may impact neurological health and disease outcomes.
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