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Activated microglia drive demyelination via CSF1R signaling
Dave E Marzan1,2, Valérie Brügger-Verdon1, Brian L West3
1Neuroscience Institute and Department of Neuroscience and Physiology, NYU Grossman School of Medicine, New York, New York, USA.
Abstract:
Microgliosis is a prominent pathological feature in many neurological diseases including multiple sclerosis (MS), a progressive auto-immune demyelinating disorder. The precise role of microglia, parenchymal central nervous system (CNS) macrophages, during demyelination, and the relative contributions of peripheral macrophages are incompletely understood. Classical markers used to identify microglia do not reliably discriminate between microglia and peripheral macrophages, confounding analyses. Here, we use a genetic fate mapping strategy to identify microglia as predominant responders and key effectors of demyelination in the cuprizone (CUP) model. Colony-stimulating factor 1 (CSF1), also known as macrophage colony-stimulating factor (M-CSF) - a secreted cytokine that regulates microglia development and survival-is upregulated in demyelinated white matter lesions. Depletion of microglia with the CSF1R inhibitor PLX3397 greatly abrogates the demyelination, loss of oligodendrocytes, and reactive astrocytosis that results from CUP treatment. Electron microscopy (EM) and serial block face imaging show myelin sheaths remain intact in CUP treated mice depleted of microglia. However, these CUP-damaged myelin sheaths are lost and robustly phagocytosed upon-repopulation of microglia. Direct injection of CSF1 into CNS white matter induces focal microgliosis and demyelination indicating active CSF1 signaling can promote demyelination. Finally, mice defective in adopting a toxic astrocyte phenotype that is driven by microglia nevertheless demyelinate normally upon CUP treatment implicating microglia rather than astrocytes as the primary drivers of CUP-mediated demyelination. Together, these studies indicate activated microglia are required for and can drive demyelination directly and implicate CSF1 signaling in these events.
Insights
Activated microglia are essential for demyelination in neurological diseases like multiple sclerosis. Colony-stimulating factor 1 (CSF1) signaling drives this microglial activation and subsequent myelin damage.
Area of Science:
- Neuroimmunology
- Neuroinflammation
- Demyelinating Diseases
Background:
- Microgliosis is a hallmark of neurological disorders, including multiple sclerosis (MS).
- The exact function of microglia and peripheral macrophages in demyelination is unclear.
- Distinguishing between microglia and macrophages is challenging with current markers.
Purpose of the Study:
- To elucidate the role of microglia in demyelination using a genetic fate mapping strategy.
- To investigate the involvement of Colony-stimulating factor 1 (CSF1) in microglial responses and demyelination.
- To determine whether microglia or astrocytes are the primary drivers of demyelination in the cuprizone model.
Main Methods:
- Genetic fate mapping in the cuprizone (CUP) model.
- Depletion of microglia using the CSF1R inhibitor PLX3397.
- Electron microscopy (EM) and serial block face imaging.
- Direct injection of CSF1 into the CNS.
- Analysis of mice with impaired microglial-astrocyte interactions.
Main Results:
- Microglia are the primary responders and effectors of demyelination in the CUP model.
- CSF1R inhibition abrogates demyelination, oligodendrocyte loss, and astrocytosis.
- Myelin sheaths remain intact without microglia; phagocytosis occurs upon repopulation.
- CSF1 injection induces microgliosis and demyelination, indicating CSF1 signaling drives demyelination.
- Demyelination occurs normally in mice lacking toxic astrocyte phenotypes, implicating microglia as primary drivers.
Conclusions:
- Activated microglia are necessary for and directly drive demyelination.
- CSF1 signaling plays a critical role in mediating microglial-driven demyelination.
- Microglia, not astrocytes, are the primary drivers of cuprizone-induced demyelination.
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