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Intravital Imaging of Axonal Interactions with Microglia and Macrophages in a Mouse Dorsal Column Crush Injury
Published on: November 23, 2014
Phagocytic microglia and macrophages in brain injury and repair
Fang Yu1,2, Yangfan Wang1,2, Anne R Stetler1,2
1Geriatric Research, Education and Clinical Center, Veterans Affairs Pittsburgh Health Care System, Pittsburgh, Pennsylvania, USA.
Aims:
Phagocytosis is the cellular digestion of extracellular particles, such as pathogens and dying cells, and is a key element in the evolution of central nervous system (CNS) disorders. Microglia and macrophages are the professional phagocytes of the CNS. By clearing toxic cellular debris and reshaping the extracellular matrix, microglia/macrophages help pilot the brain repair and functional recovery process. However, CNS resident and invading immune cells can also magnify tissue damage by igniting runaway inflammation and phagocytosing stressed-but viable-neurons.
Discussion:
Microglia/macrophages help mediate intercellular communication and react quickly to the "find-me" signals expressed by dead/dying neurons. The activated microglia/macrophages then migrate to the injury site to initiate the phagocytic process upon encountering "eat-me" signals on the surfaces of endangered cells. Thus, healthy cells attempt to avoid inappropriate engulfment by expressing "do not-eat-me" signals. Microglia/macrophages also have the capacity to phagocytose immune cells that invade the injured brain (e.g., neutrophils) and to regulate their pro-inflammatory properties. During brain recovery, microglia/macrophages engulf myelin debris, initiate synaptogenesis and neurogenesis, and sculpt a favorable extracellular matrix to support network rewiring, among other favorable roles. Here, we review the multilayered nature of phagocytotic microglia/macrophages, including the molecular and cellular mechanisms that govern microglia/macrophage-induced phagocytosis in acute brain injury, and discuss strategies that tap into the therapeutic potential of this engulfment process.
Conclusion:
Identification of biological targets that can temper neuroinflammation after brain injury without hindering the essential phagocytic functions of microglia/macrophages will expedite better medical management of the stroke recovery stage.
Insights
Phagocytosis by microglia and macrophages is crucial for brain repair after injury, but can also cause damage. Targeting this process may improve recovery from central nervous system disorders.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Phagocytosis, the engulfment of extracellular particles, is vital for central nervous system (CNS) health and disease.
- Microglia and macrophages are key phagocytes in the CNS, clearing debris and aiding repair, but can also exacerbate injury through inflammation and neuronal phagocytosis.
Purpose of the Study:
- To review the complex roles of phagocytic microglia and macrophages in acute brain injury.
- To explore the molecular and cellular mechanisms governing phagocytosis in the CNS.
- To discuss therapeutic strategies targeting phagocytosis for brain repair.
Main Methods:
- Literature review of phagocytosis in CNS disorders.
- Analysis of molecular and cellular signaling in microglia/macrophage phagocytosis.
- Discussion of therapeutic interventions for brain injury recovery.
Main Results:
- Microglia/macrophages respond to "find-me" and "eat-me" signals from damaged cells, while healthy cells express "do not-eat-me" signals.
- These phagocytes clear debris, regulate inflammation, and support neural repair processes like synaptogenesis and neurogenesis.
- Dysregulated phagocytosis can lead to excessive inflammation and neuronal loss, worsening CNS injury.
Conclusions:
- Phagocytosis by microglia/macrophages has dual roles in brain injury, promoting repair while potentially causing harm.
- Understanding these mechanisms is key to developing therapies.
- Identifying targets to modulate neuroinflammation without compromising essential phagocytic functions is crucial for stroke recovery.
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