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Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Microglial cell population dynamics in the injured adult central nervous system
Rune Ladeby1, Martin Wirenfeldt, Daniel Garcia-Ovejero
1Medical Biotechnology Center, University of Southern Denmark, Odense C.
Abstract:
Reactive microgliosis is characteristic of trauma and stroke as well as inflammatory and chronic neurodegenerative disease. A conspicuous feature of the microglial reaction to acute neural injury is a massive expansion of the microglial cell population which peaks a few days following injury. New data based on the use of radiation bone marrow-chimeric mice suggest this expansion also involves recruitment of bone marrow-derived cells, which migrate into the neural parenchyma and differentiate into microglia. Here, we discuss the contribution of bone marrow-derived cells to the injury-induced expansion of the microglial cell population, seen in the dentate gyrus with ongoing anterograde axonal and terminal synaptic degeneration, subsequent to transection of the entorhino-dentate perforant path projection. In this paradigm of minor brain injury, the bone marrow-derived cells are grossly outnumbered by activated resident microglia, which express the stem cell antigen CD34 concurrent to a marked capacity for self-renewal. The observation of a mixed origin of lesion-reactive microglia, consisting of a smaller subpopulation of exogenous bone marrow-derived microglia, and a larger population of activated resident microglia, the majority of which express CD34 and undergo proliferation, suggests that lesion-reactive microglia consist of functionally distinct cell populations. The demonstration of an injury-enhanced recruitment of bone marrow-derived cells into the perforant path-denervated dentate gyrus, raises the possibility of using genetically manipulated cells as vectors for lesion-site-specific gene therapy even in minimally injured areas of the central nervous system.
Insights
Microglia in the brain expand after injury, involving both resident cells and bone marrow-derived cells. This mixed origin suggests distinct functional roles for microglia in neural repair and potential for gene therapy.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Reactive microgliosis is a hallmark of brain injury, inflammation, and neurodegeneration.
- Microglial populations expand significantly following acute neural injury.
Purpose of the Study:
- To investigate the contribution of bone marrow-derived cells to injury-induced microglial expansion.
- To characterize the origins and properties of lesion-reactive microglia in a model of minor brain injury.
Main Methods:
- Utilized radiation bone marrow-chimeric mice to track cell origins.
- Examined microglial response in the dentate gyrus following entorhino-dentate perforant path transection.
- Analyzed cell populations for markers like CD34 and assessed proliferation.
Main Results:
- Microglial expansion after injury involves both resident microglia and recruited bone marrow-derived cells.
- Resident microglia, expressing CD34, were the predominant population and showed self-renewal capacity.
- Bone marrow-derived microglia were a smaller, distinct subpopulation.
Conclusions:
- Lesion-reactive microglia comprise functionally distinct populations with mixed origins.
- Injury enhances the recruitment of bone marrow-derived cells into the brain.
- This suggests potential for using genetically modified cells for targeted gene therapy in injured neural tissues.
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