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Intravital Imaging of Axonal Interactions with Microglia and Macrophages in a Mouse Dorsal Column Crush Injury
Published on: November 23, 2014
Defective microglial development in the hippocampus of Cx3cr1 deficient mice
Francesca Pagani1, Rosa C Paolicelli2, Emanuele Murana3
1Center for Life Nanoscience - Istituto Italiano di Tecnologia@Sapienza, Rome Italy.
Abstract:
Microglial cells participate in brain development and influence neuronal loss and synaptic maturation. Fractalkine is an important neuronal chemokine whose expression increases during development and that can influence microglia function via the fractalkine receptor, CX3CR1. Mice lacking Cx3cr1 show a variety of neuronal defects thought to be the result of deficient microglia function. Activation of CX3CR1 is important for the proper migration of microglia to sites of injury and into the brain during development. However, little is known about how fractalkine modulates microglial properties during development. Here we examined microglial morphology, response to ATP, and K(+) current properties in acute brain slices from Cx3cr1 knockout mice across postnatal hippocampal development. We found that fractalkine signaling is necessary for the development of several morphological and physiological features of microglia. Specifically, we found that the occurrence of an outward rectifying K(+) current, typical of activated microglia, that peaked during the second and third postnatal week, was reduced in Cx3cr1 knockout mice. Fractalkine signaling also influenced microglial morphology and ability to extend processes in response to ATP following its focal application to the slice. Our results reveal the developmental profile of several morphological and physiological properties of microglia and demonstrate that these processes are modulated by fractalkine signaling.
Insights
Fractalkine signaling is crucial for microglia development, influencing their morphology and function. Mice lacking the fractalkine receptor CX3CR1 exhibit impaired microglial properties during early brain development.
Area of Science:
- Neuroscience
- Cell Biology
- Developmental Biology
Background:
- Microglia are key immune cells in the brain, essential for development and neuronal health.
- Fractalkine signaling via CX3CR1 influences microglial function and migration.
- Deficiencies in CX3CR1 signaling are linked to neuronal defects.
Purpose of the Study:
- To investigate the role of fractalkine signaling in modulating microglial morphology and physiology during postnatal hippocampal development.
- To characterize the developmental changes in microglial properties in the absence of CX3CR1.
Main Methods:
- Analysis of microglial morphology in acute brain slices from Cx3cr1 knockout and wild-type mice.
- Assessment of microglial response to ATP application.
- Electrophysiological recordings to measure K(+) currents in microglia.
Main Results:
- Fractalkine signaling is essential for the normal development of microglial morphology and physiological responses.
- Cx3cr1 knockout mice showed reduced outward rectifying K(+) currents in microglia, particularly during the second and third postnatal weeks.
- Microglial process extension in response to ATP was impaired in Cx3cr1 knockout mice.
Conclusions:
- Fractalkine signaling through CX3CR1 plays a critical role in shaping microglial characteristics during early brain development.
- These findings highlight the importance of the fractalkine-CX3CR1 axis for proper microglial maturation and function.

