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Published on: April 13, 2017
Microglial Interferon Signaling and White Matter
Ashley McDonough1, Richard V Lee1, Jonathan R Weinstein2
1Department of Neurology, University of Washington, Seattle, WA, 98195, USA.
Abstract:
Microglia, the resident immune cells of the CNS, are primary regulators of the neuroimmune response to injury. Type I interferons (IFNs), including the IFNαs and IFNβ, are key cytokines in the innate immune system. Their activity is implicated in the regulation of microglial function both during development and in response to neuroinflammation, ischemia, and neurodegeneration. Data from numerous studies in multiple sclerosis (MS) and stroke suggest that type I IFNs can modulate the microglial phenotype, influence the overall neuroimmune milieu, regulate phagocytosis, and affect blood-brain barrier integrity. All of these IFN-induced effects result in numerous downstream consequences on white matter pathology and microglial reactivity. Dysregulation of IFN signaling in mouse models with genetic deficiency in ubiquitin specific protease 18 (USP18) leads to a severe neurological phenotype and neuropathological changes that include white matter microgliosis and pro-inflammatory gene expression in dystrophic microglia. A class of genetic disorders in humans, referred to as pseudo-TORCH syndrome (PTS) for the clinical resemblance to infection-induced TORCH syndrome, also show dysregulation of IFN signaling, which leads to severe neurological developmental disease. In these disorders, the excessive activation of IFN signaling during CNS development results in a destructive interferonopathy with similar induction of microglial dysfunction as seen in USP18 deficient mice. Other recent studies implicate "microgliopathies" more broadly in neurological disorders including Alzheimer's disease (AD) and MS, suggesting that microglia are a potential therapeutic target for disease prevention and/or treatment, with interferon signaling playing a key role in regulating the microglial phenotype.
Insights
Type I interferons (IFNs) critically regulate microglia, the brain's immune cells. Dysregulated IFN signaling causes neurological diseases by impairing microglial function, highlighting IFNs as therapeutic targets.
Area of Science:
- Neuroimmunology
- Cellular and Molecular Neuroscience
Background:
- Microglia are central to CNS immune responses and neuroinflammation.
- Type I interferons (IFNs), including IFNα and IFNβ, are key immune cytokines influencing microglial function.
- IFN activity impacts neuroinflammation, ischemia, neurodegeneration, and blood-brain barrier integrity.
Purpose of the Study:
- To explore the role of type I IFNs in regulating microglial function in neurological disorders.
- To investigate the consequences of dysregulated IFN signaling in genetic models and human diseases.
- To highlight microglia and IFN signaling as potential therapeutic targets.
Main Methods:
- Review of existing literature on type I IFNs, microglia, and neurological diseases.
- Analysis of data from mouse models with genetic deficiencies (e.g., USP18).
- Examination of human genetic disorders with dysregulated IFN signaling (e.g., pseudo-TORCH syndrome).
Main Results:
- Type I IFNs modulate microglial phenotype, phagocytosis, and blood-brain barrier integrity.
- USP18 deficiency and pseudo-TORCH syndrome demonstrate severe neurological phenotypes linked to dysregulated IFN signaling and microglial dysfunction.
- Interferonopathies result in white matter pathology and pro-inflammatory microglial activation.
Conclusions:
- Type I IFN signaling is crucial for maintaining microglial homeostasis and CNS health.
- Dysregulation of IFN signaling leads to microgliopathies and severe neurological diseases.
- Targeting IFN signaling pathways presents a promising therapeutic strategy for neurological disorders like MS and AD.
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