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Regulation of postnatal forebrain amoeboid microglial cell proliferation and development by the transcription factor
Morena Zusso1, Laurent Methot, Rita Lo
1Montreal Neurological Institute, McGill University, Montreal, Quebec, H3A 2B4 Canada.
Abstract:
Microglia are the immune cells of the nervous system, where they act as resident macrophages during inflammatory events underlying many neuropathological conditions. Microglia derive from primitive myeloid precursors that colonize the nervous system during embryonic development. In the postnatal brain, microglia are initially mitotic, rounded in shape (amoeboid), and phagocytically active. As brain development proceeds, they gradually undergo a transition to a surveillant nonphagocytic state characterized by a highly branched (ramified) morphology. This ramification process is almost recapitulated in reverse during the process of microglia activation in the adult brain, when surveillant microglia undergo a ramified-to-amoeboid morphological transformation and become phagocytic in response to injury or disease. Little is known about the mechanisms controlling amoeboid microglial cell proliferation, activation, and ramification during brain development, despite the critical role of these processes in the establishment of the adult microglia pool and their relevance to microglia activation in the adult brain. Here we show that the mouse transcription factor Runx1, a key regulator of myeloid cell proliferation and differentiation, is expressed in forebrain amoeboid microglia during the first two postnatal weeks. Runx1 expression is then downregulated in ramified microglia. Runx1 inhibits mouse amoeboid microglia proliferation and promotes progression to the ramified state. We show further that Runx1 expression is upregulated in microglia following nerve injury in the adult mouse nervous system. These findings provide insight into the regulation of postnatal microglia activation and maturation to the ramified state and have implications for microglia biology in the developing and injured brain.
Insights
The transcription factor Runx1 regulates microglia development in the brain. Runx1 controls microglial proliferation and maturation into their ramified state, impacting brain development and injury responses.
Area of Science:
- Neuroscience
- Immunology
- Developmental Biology
Background:
- Microglia are the primary immune cells in the central nervous system, acting as resident macrophages.
- During brain development, microglia transition from an amoeboid, proliferative state to a ramified, surveillant form.
- Mechanisms governing microglial proliferation and maturation during development are not fully understood.
Purpose of the Study:
- To investigate the role of the transcription factor Runx1 in regulating microglial proliferation and maturation.
- To determine Runx1 expression patterns during postnatal brain development and in response to nerve injury.
Main Methods:
- Analysis of Runx1 expression in mouse brain microglia during postnatal development.
- Investigating the effect of Runx1 on microglial proliferation and morphology.
- Examining Runx1 expression in microglia following nerve injury in adult mice.
Main Results:
- Runx1 is expressed in amoeboid microglia during early postnatal development and downregulated in ramified microglia.
- Runx1 inhibits proliferation of amoeboid microglia and promotes their transition to the ramified state.
- Runx1 expression is upregulated in microglia after nerve injury in adult mice.
Conclusions:
- Runx1 is a key regulator of microglial proliferation and maturation during postnatal brain development.
- Runx1 plays a role in microglial activation and response to injury in the adult brain.
- These findings offer insights into microglia biology in both developing and injured nervous systems.
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