A Developmental Analysis of Juxtavascular Microglia Dynamics and Interactions with the Vasculature
Erica Mondo1, Shannon C Becker1, Amanda G Kautzman1
1Department of Neurobiology, Brudnick Neuropsychiatric Research Institute, University of Massachusetts Medical School, Worcester, Massachusetts 01605.
Abstract:
Microglia, a resident CNS macrophage, are dynamic cells, constantly extending and retracting their processes as they contact and functionally regulate neurons and other glial cells. There is far less known about microglia-vascular interactions, particularly under healthy steady-state conditions. Here, we use the male and female mouse cerebral cortex to show that a higher percentage of microglia associate with the vasculature during the first week of postnatal development compared with older ages and that the timing of these associations is dependent on the fractalkine receptor (CX3CR1). Similar developmental microglia-vascular associations were detected in the human brain. Using live imaging in mice, we found that juxtavascular microglia migrated when microglia are actively colonizing the cortex and became stationary by adulthood to occupy the same vascular space for nearly 2 months. Further, juxtavascular microglia at all ages associate with vascular areas void of astrocyte endfeet, and the developmental shift in microglial migratory behavior along vessels corresponded to when astrocyte endfeet more fully ensheath vessels. Together, our data provide a comprehensive assessment of microglia-vascular interactions. They support a mechanism by which microglia use the vasculature to migrate within the developing brain parenchyma. This migration becomes restricted on the arrival of astrocyte endfeet such that juxtavascular microglia become highly stationary and stable in the mature cortex.SIGNIFICANCE STATEMENT We report the first extensive analysis of juxtavascular microglia in the healthy, developing, and adult brain. Live imaging revealed that juxtavascular microglia within the cortex are highly motile and migrate along vessels as they are colonizing cortical regions. Using confocal, expansion, super-resolution, and electron microscopy, we determined that microglia associate with the vasculature at all ages in areas lacking full astrocyte endfoot coverage and motility of juxtavascular microglia ceases as astrocyte endfeet more fully ensheath the vasculature. Our data lay the fundamental groundwork to investigate microglia-astrocyte cross talk and juxtavascular microglial function in the healthy and diseased brain. They further provide a potential mechanism by which vascular interactions facilitate microglial colonization of the brain to later regulate neural circuit development.
Insights
Microglia use brain vasculature for migration during development, a process influenced by astrocyte endfeet. This interaction is crucial for understanding brain development and potential diseases.
Area of Science:
- Neuroscience
- Cell Biology
- Developmental Biology
Background:
- Microglia, the brain's resident immune cells, are known to interact with neurons and glial cells.
- Microglia-vascular interactions, especially in healthy brains, are less understood.
- The role of fractalkine receptor (CX3CR1) in microglial behavior is established.
Purpose of the Study:
- To comprehensively analyze microglia-vascular interactions in the developing and adult brain.
- To investigate the dynamic behavior of juxtavascular microglia over time.
- To elucidate the influence of astrocyte endfeet on microglial migration along blood vessels.
Main Methods:
- Live imaging in male and female mouse cerebral cortex.
- Confocal, expansion, super-resolution, and electron microscopy.
- Analysis of both developing and adult brain tissue (mouse and human).
Main Results:
- A higher percentage of microglia associate with vasculature during early postnatal development, dependent on CX3CR1.
- Juxtavascular microglia are motile during cortical colonization and become stationary in adulthood.
- Microglial association with vasculature occurs in areas with less astrocyte endfeet coverage; motility decreases as astrocyte ensheathment increases.
Conclusions:
- Microglia utilize the vasculature for migration within the developing brain parenchyma.
- Astrocyte endfeet ensheathment restricts microglial migration along vessels, leading to stationary juxtavascular microglia in the mature cortex.
- These findings provide a basis for studying microglia-astrocyte interactions and juxtavascular microglial roles in health and disease.


