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Central nervous system diseases related to pathological microglial phagocytosis
Ke Wang1, Jiaying Li1, Yue Zhang1
1State Key Laboratory of Medical Neurobiology, MOE Frontiers Center for Brain Science, Institutes of Brain Science, Fudan University, Shanghai, China.
Abstract:
Microglia are important phagocytes of the central nervous system (CNS). They play an important role in protecting the CNS by clearing necrotic tissue and apoptotic cells in many CNS diseases. However, recent studies have found that microglia can phagocytose parts of neurons excessively, such as the neuronal cell body, synapse, or myelin sheaths, before or after the onset of CNS diseases, leading to aggravated injury and impaired tissue repair. Meanwhile, reduced phagocytosis of synapses and myelin results in abnormal circuit connections and inhibition of remyelination, respectively. Previous studies focused primarily on the positive effects of microglia phagocytosis, whereas only a few studies have focused on the negative effects. In this review, we use the term "pathological microglial phagocytosis" to refer to excessive or reduced phagocytosis by microglia that leads to structural or functional abnormalities in target cells and brain tissue. The classification of pathological microglial phagocytosis, the composition, and activation of related signaling pathways, as well as the process of pathological phagocytosis in various kinds of CNS diseases, are described in this review. We hypothesize that pathological microglial phagocytosis leads to aggravation of tissue damage and negative functional outcome. For example, excessive microglial phagocytosis of synapses can be observed in Alzheimer's disease and schizophrenia, leading to significant synapse loss and memory impairment. In Parkinson's disease, ischemic stroke, and traumatic brain injury, excessive microglial phagocytosis of neuronal cell bodies causes impaired gray matter recovery and sensory dysfunction. We therefore believe that more studies should focus on the mechanism of pathological microglial phagocytosis and activation to uncover potential targets of therapeutic intervention.
Insights
Pathological microglial phagocytosis, either excessive or reduced, harms the central nervous system (CNS). This review explores how microglial phagocytosis contributes to CNS diseases and suggests therapeutic targets.
Area of Science:
- Neuroscience
- Immunology
- Cell Biology
Background:
- Microglia are key phagocytes in the central nervous system (CNS), crucial for clearing debris in disease.
- While beneficial, microglia can also excessively phagocytose neuronal components, worsening CNS injury and repair.
- Previous research has largely overlooked the detrimental roles of microglial phagocytosis.
Purpose of the Study:
- To define and classify "pathological microglial phagocytosis" as detrimental phagocytic activity.
- To review the mechanisms, signaling pathways, and role of pathological microglial phagocytosis in CNS diseases.
- To highlight the negative impact of microglial phagocytosis on tissue damage and functional outcomes.
Main Methods:
- Literature review focusing on microglial phagocytosis in CNS diseases.
- Analysis of signaling pathways involved in microglial phagocytosis.
- Case examples of pathological microglial phagocytosis in Alzheimer's, schizophrenia, Parkinson's, stroke, and TBI.
Main Results:
- Pathological microglial phagocytosis, characterized by excessive or reduced activity, contributes to CNS damage.
- Excessive phagocytosis of synapses is linked to memory impairment in Alzheimer's and schizophrenia.
- Excessive phagocytosis of neuronal cell bodies impairs recovery in Parkinson's disease, stroke, and traumatic brain injury.
Conclusions:
- Pathological microglial phagocytosis exacerbates tissue damage and leads to negative functional outcomes in the CNS.
- Understanding the mechanisms of pathological microglial phagocytosis is crucial for developing new therapies.
- Further research into pathological microglial phagocytosis could reveal novel therapeutic targets for CNS disorders.
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