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Characterization and Isolation of Mouse Primary Microglia by Density Gradient Centrifugation
Published on: February 16, 2018
Microglia shield the murine brain from damage mediated by the cytokines IL-6 and IFN-α
Phillip K West1, Barney Viengkhou1, Iain L Campbell1
1School of Life and Environmental Sciences, Charles Perkins Centre and the Sydney Institute for Infectious Diseases, The University of Sydney, Sydney, NSW, Australia.
Abstract:
Sustained production of elevated levels of the cytokines interleukin (IL)-6 or interferon (IFN)-α in the central nervous system (CNS) is detrimental and directly contributes to the pathogenesis of neurological diseases such as neuromyelitis optica spectrum disorders or cerebral interferonopathies, respectively. Using transgenic mice with CNS-targeted production of IL-6 (GFAP-IL6) or IFN-α (GFAP-IFN), we have recently demonstrated that microglia are prominent target and effector cells and mount stimulus-specific responses to these cytokines. In order to further clarify the phenotype and function of these cells, we treated GFAP-IL6 and GFAP-IFN mice with the CSF1R inhibitor PLX5622 to deplete microglia. We examined their ability to recover from acute microglia depletion, as well as the impact of chronic microglia depletion on the progression of disease. Following acute depletion in the brains of GFAP-IL6 mice, microglia repopulation was enhanced, while in GFAP-IFN mice, microglia did not repopulate the brain. Furthermore, chronic CSF1R inhibition was detrimental to the brain of GFAP-IL6 and GFAP-IFN mice and gave rise to severe CNS calcification which strongly correlated with the absence of microglia. In addition, PLX5622-treated GFAP-IFN mice had markedly reduced survival. Our findings provide evidence for novel microglia functions to protect against IFN-α-mediated neurotoxicity and neuronal dysregulation, as well as restrain calcification as a result of both IL-6- and IFN-α-induced neuroinflammation. Taken together, we demonstrate that CSF1R inhibition may be an undesirable target for therapeutic treatment of neuroinflammatory diseases that are driven by elevated IL-6 and IFN-α production.
Insights
Microglia protect the central nervous system (CNS) from interleukin-6 (IL-6) and interferon-alpha (IFN-α) driven neuroinflammation. Inhibiting CSF1R to deplete microglia can worsen CNS calcification and neurotoxicity, suggesting it
Area of Science:
- Neuroscience
- Immunology
- Neuroinflammation
Background:
- Elevated central nervous system (CNS) interleukin-6 (IL-6) or interferon-alpha (IFN-α) drives neurological disease pathogenesis.
- Microglia are key target and effector cells responding to IL-6 and IFN-α in the CNS.
- Understanding microglia's role in IL-6/IFN-α-mediated neuroinflammation is crucial for therapeutic development.
Purpose of the Study:
- To investigate microglia repopulation dynamics after depletion in IL-6 and IFN-α transgenic mouse models.
- To assess the impact of chronic microglia depletion on disease progression and CNS pathology.
- To clarify novel microglia functions in mitigating IL-6 and IFN-α-induced neuroinflammation and calcification.
Main Methods:
- Utilized transgenic mice (GFAP-IL6 and GFAP-IFN) with CNS-targeted IL-6 or IFN-α production.
- Administered the CSF1R inhibitor PLX5622 for acute and chronic microglia depletion.
- Analyzed microglia repopulation, CNS pathology (calcification), and survival rates.
Main Results:
- Microglia repopulation was enhanced in GFAP-IL6 mice but absent in GFAP-IFN mice after acute depletion.
- Chronic CSF1R inhibition led to severe CNS calcification and was detrimental in both GFAP-IL6 and GFAP-IFN mice.
- PLX5622-treated GFAP-IFN mice exhibited significantly reduced survival.
- Absence of microglia correlated with severe CNS calcification.
Conclusions:
- Microglia play essential protective roles against IFN-α-mediated neurotoxicity and neuronal dysregulation.
- Microglia are critical in preventing CNS calcification associated with IL-6 and IFN-α-induced neuroinflammation.
- CSF1R inhibition may be an unfavorable therapeutic strategy for neuroinflammatory diseases driven by elevated IL-6 and IFN-α.

