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Published on: May 25, 2011
Microglia-neuron crosstalk: Signaling mechanism and control of synaptic transmission
Silvia Marinelli1, Bernadette Basilico2, Maria Cristina Marrone1
1European Brain Research Institute-Rita Levi Montalcini, Rome, Italy.
Abstract:
The continuous crosstalk between microglia and neurons is required for microglia housekeeping functions and contributes to brain homeostasis. Through these exchanges, microglia take part in crucial brain functions, including development and plasticity. The alteration of neuron-microglia communication contributes to brain disease states with consequences, ranging from synaptic function to neuronal survival. This review focuses on the signaling pathways responsible for neuron-microglia crosstalk, highlighting their physiological roles and their alteration or specific involvement in disease. In particular, we discuss studies, establishing how these signaling allow microglial cells to control relevant physiological functions during brain development, including synaptic formation and circuit refinement. In addition, we highlight how microglia and neurons interact functionally to regulate highly dynamical synaptic functions. Microglia are able to release several signaling molecules involved in the regulation of synaptic activity and plasticity. On the other side, molecules of neuronal origin control microglial processes motility in an activity-dependent manner. Indeed, the continuous crosstalk between microglia and neurons is required for the sensing and housekeeping functions of microglia and contributes to the maintenance of brain homeostasis and, particularly, to the sculpting of neuronal connections during development. These interactions lay on the delicate edge between physiological processes and homeostasis alteration in pathology and are themselves altered during neuroinflammation. The full description of these processes could be fundamental for understanding brain functioning in health and disease.
Insights
Microglia and neurons constantly communicate, essential for brain health and development. Disruptions in this neuron-microglia crosstalk can lead to neurological diseases.
Area of Science:
- Neuroscience
- Cell Biology
- Neuroimmunology
Background:
- Microglia, the brain's immune cells, engage in continuous communication with neurons.
- This neuron-microglia crosstalk is vital for maintaining brain homeostasis, development, and plasticity.
- Altered communication between these cells contributes to various brain pathologies.
Purpose of the Study:
- To review signaling pathways governing neuron-microglia crosstalk.
- To highlight the physiological roles of these pathways in brain development and function.
- To examine the involvement of these pathways in disease states.
Main Methods:
- Literature review of studies on neuron-microglia signaling.
- Analysis of signaling pathways regulating microglial functions.
- Examination of neuronal influence on microglial activity.
Main Results:
- Neuron-microglia signaling controls synaptic formation and circuit refinement during development.
- Microglia release molecules that regulate synaptic activity and plasticity.
- Neuronal activity modulates microglial motility and function.
- These interactions are critical for homeostasis but are altered in neuroinflammation.
Conclusions:
- Neuron-microglia crosstalk is fundamental for brain development, homeostasis, and synaptic regulation.
- Understanding these signaling pathways is crucial for comprehending brain function in health and disease.
- Dysregulation of this communication is implicated in neurological disorders.
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