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Dissection and Isolation of Murine Glia from Multiple Central Nervous System Regions
Published on: June 4, 2020
Astrocyte response to IFN-γ limits IL-6-mediated microglia activation and progressive autoimmune encephalomyelitis
Carine Savarin1, David R Hinton2, Alice Valentin-Torres3
1Department of Neurosciences NC-30, Lerner Research Institute, The Cleveland Clinic, 9500 Euclid Avenue, Cleveland, OH, 44195, USA. savaric@ccf.org.
Background:
Therapeutic modalities effective in patients with progressive forms of multiple sclerosis (MS) are limited. In a murine model of progressive MS, the sustained disability during the chronic phase of experimental autoimmune encephalomyelitis (EAE) correlated with elevated expression of interleukin (IL)-6, a cytokine with pleiotropic functions and therapeutic target for non-central nervous system (CNS) autoimmune disease. Sustained IL-6 expression in astrocytes restricted to areas of demyelination suggested that IL-6 plays a major role in disease progression during chronic EAE.
Methods:
A progressive form of EAE was induced using transgenic mice expressing a dominant negative interferon-γ (IFN-γ) receptor alpha chain under control of human glial fibrillary acidic protein (GFAP) promoter (GFAPγR1Δ mice). The role of IL-6 in regulating progressive CNS autoimmunity was assessed by treating GFAPγR1Δ mice with anti-IL-6 neutralizing antibody during chronic EAE.
Results:
IL-6 neutralization restricted disease progression and decreased disability, myelin loss, and axonal damage without affecting astrogliosis. IL-6 blockade reduced CNS inflammation by limiting inflammatory cell proliferation; however, the relative frequencies of CNS leukocyte infiltrates, including the Th1, Th17, and Treg CD4 T cell subsets, were not altered. IL-6 blockade rather limited the activation and proliferation of microglia, which correlated with higher expression of Galectin-1, a regulator of microglia activation expressed by astrocytes.
Conclusions:
These data demonstrate that astrocyte-derived IL-6 is a key mediator of progressive disease and support IL-6 blockade as a viable intervention strategy to combat progressive MS.
Insights
Blocking interleukin-6 (IL-6) in a mouse model of progressive multiple sclerosis (MS) reduced disease severity and inflammation. This suggests IL-6 blockade is a promising strategy for treating progressive MS.
Area of Science:
- Neuroimmunology
- Autoimmune Diseases
- Cytokine Biology
Background:
- Therapeutic options for progressive multiple sclerosis (MS) are limited.
- Elevated interleukin-6 (IL-6) expression in astrocytes during chronic experimental autoimmune encephalomyelitis (EAE) correlated with sustained disability.
- IL-6 is a potential therapeutic target for autoimmune diseases.
Purpose of the Study:
- To investigate the role of IL-6 in progressive central nervous system (CNS) autoimmunity.
- To assess the efficacy of IL-6 neutralization in a murine model of progressive MS.
Main Methods:
- Progressive EAE was induced in GFAPγR1Δ mice.
- Mice were treated with an anti-IL-6 neutralizing antibody during the chronic phase of EAE.
- Disease progression, disability, myelin loss, axonal damage, CNS inflammation, and leukocyte infiltrates were assessed.
Main Results:
- IL-6 neutralization significantly restricted disease progression, decreased disability, myelin loss, and axonal damage.
- IL-6 blockade reduced CNS inflammation by limiting inflammatory cell proliferation and microglia activation.
- While overall leukocyte frequencies were unchanged, IL-6 blockade correlated with increased Galectin-1 expression, a regulator of microglia activation.
Conclusions:
- Astrocyte-derived IL-6 is a key mediator in the progression of EAE.
- IL-6 blockade represents a viable therapeutic strategy for combating progressive MS.
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