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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Cranial irradiation disrupts homeostatic microglial dynamic behavior
Alexandra O Strohm1, Carl Johnston2, Eric Hernady3
1Department of Environmental Medicine, University of Rochester Medical Center, Rochester, NY, 14642, USA.
Abstract:
Cranial irradiation causes cognitive deficits that are in part mediated by microglia, the resident immune cells of the brain. Microglia are highly reactive, exhibiting changes in shape and morphology depending on the function they are performing. Additionally, microglia processes make dynamic, physical contacts with different components of their environment to monitor the functional state of the brain and promote plasticity. Though evidence suggests radiation perturbs homeostatic microglia functions, it is unknown how cranial irradiation impacts the dynamic behavior of microglia over time. Here, we paired in vivo two-photon microscopy with a transgenic mouse model that labels cortical microglia to follow these cells and determine how they change over time in cranial irradiated mice and their control littermates. We show that a single dose of 10 Gy cranial irradiation disrupts homeostatic cortical microglia dynamics during a 1-month time course. We found a lasting loss of microglial cells following cranial irradiation, coupled with a modest dysregulation of microglial soma displacement at earlier timepoints. The homogeneous distribution of microglia was maintained, suggesting microglia rearrange themselves to account for cell loss and maintain territorial organization following cranial irradiation. Furthermore, we found cranial irradiation reduced microglia coverage of the parenchyma and their surveillance capacity, without overtly changing morphology. Our results demonstrate that a single dose of radiation can induce changes in microglial behavior and function that could influence neurological health. These results set the foundation for future work examining how cranial irradiation impacts complex cellular dynamics in the brain which could contribute to the manifestation of cognitive deficits.
Insights
Cranial irradiation disrupts brain immune cell dynamics, causing lasting microglial loss and reduced surveillance. This impacts neurological health and cognitive function over time.
Area of Science:
- Neuroscience
- Immunology
- Radiation Biology
Background:
- Cranial irradiation can lead to cognitive deficits.
- Microglia, the brain's immune cells, are crucial for brain function and plasticity.
- Radiation's impact on dynamic microglial behavior over time is not well understood.
Purpose of the Study:
- To investigate how cranial irradiation affects the dynamic behavior of microglia over a 1-month period.
- To understand the long-term consequences of radiation on microglial cell populations and their functions.
Main Methods:
- Utilized in vivo two-photon microscopy.
- Employed a transgenic mouse model for cortical microglia labeling.
- Tracked microglial dynamics in cranial irradiated mice and controls over one month.
Main Results:
- A single 10 Gy dose of cranial irradiation disrupted homeostatic microglia dynamics.
- Observed a lasting loss of microglial cells and modest soma displacement dysregulation.
- Found reduced microglia coverage and surveillance capacity, despite maintained distribution and morphology.
Conclusions:
- Cranial irradiation induces significant, lasting changes in microglial behavior and function.
- Radiation-induced alterations in microglia dynamics may contribute to cognitive deficits.
- These findings provide a basis for further research into radiation's effects on brain cellular dynamics.

