Microglial interactions with synapses are modulated by visual experience
Marie-Ève Tremblay1, Rebecca L Lowery, Ania K Majewska
1Department of Neurobiology and Anatomy and Center for Visual Science, University of Rochester, Rochester, New York, United States of America. Marie-Eve_Tremblay@URMC.rochester.edu
Abstract:
Microglia are the immune cells of the brain. In the absence of pathological insult, their highly motile processes continually survey the brain parenchyma and transiently contact synaptic elements. Aside from monitoring, their physiological roles at synapses are not known. To gain insight into possible roles of microglia in the modification of synaptic structures, we used immunocytochemical electron microscopy, serial section electron microscopy with three-dimensional reconstructions, and two-photon in vivo imaging to characterize microglial interactions with synapses during normal and altered sensory experience, in the visual cortex of juvenile mice. During normal visual experience, most microglial processes displayed direct apposition with multiple synapse-associated elements, including synaptic clefts. Microglial processes were also distinctively surrounded by pockets of extracellular space. In terms of dynamics, microglial processes localized to the vicinity of small and transiently growing dendritic spines, which were typically lost over 2 d. When experience was manipulated through light deprivation and reexposure, microglial processes changed their morphology, showed altered distributions of extracellular space, displayed phagocytic structures, apposed synaptic clefts more frequently, and enveloped synapse-associated elements more extensively. While light deprivation induced microglia to become less motile and changed their preference of localization to the vicinity of a subset of larger dendritic spines that persistently shrank, light reexposure reversed these behaviors. Taken together, these findings reveal different modalities of microglial interactions with synapses that are subtly altered by sensory experience. These findings suggest that microglia may actively contribute to the experience-dependent modification or elimination of a specific subset of synapses in the healthy brain.
Insights
Microglia, the brain's immune cells, interact with synapses. Sensory experience dynamically alters these microglial interactions, suggesting a role in synapse modification and elimination in the healthy brain.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are the brain's resident immune cells, constantly surveying the brain parenchyma with motile processes.
- While their monitoring functions are known, the physiological roles of microglia at synapses remain unclear.
- Understanding microglial roles is crucial for comprehending brain plasticity and function.
Purpose of the Study:
- To investigate the dynamic interactions between microglia and synapses in the juvenile mouse visual cortex.
- To determine how sensory experience influences microglial morphology, distribution, and synaptic engagement.
- To explore potential roles of microglia in experience-dependent synaptic modification.
Main Methods:
- Immunocytochemical electron microscopy
- Serial section electron microscopy with 3D reconstructions
- Two-photon in vivo imaging
Main Results:
- Microglial processes frequently contacted synaptic elements and were associated with dendritic spines during normal visual experience.
- Sensory experience manipulation (light deprivation/reexposure) altered microglial morphology, extracellular space distribution, and phagocytic activity.
- Microglia exhibited altered synaptic apposition and ensheathment patterns in response to changes in visual input, with distinct behaviors during deprivation versus reexposure.
Conclusions:
- Microglia exhibit dynamic and experience-dependent interactions with synapses in the healthy brain.
- These interactions suggest that microglia actively participate in the modification or elimination of specific synapses based on sensory input.
- Microglia may play a significant role in synaptic plasticity and circuit refinement throughout development.


