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Flow Cytometric Analysis of Lymphocyte Infiltration in Central Nervous System during Experimental Autoimmune Encephalomyelitis
Published on: November 17, 2020
Lineage-Specific Metabolic Properties and Vulnerabilities of T Cells in the Demyelinating Central Nervous System
Scott M Seki1,2,3, Max Stevenson1, Abagail M Rosen1
1Center for Brain Immunology and Glia, Department of Neuroscience, School of Medicine, University of Virginia, Charlottesville, VA 22908.
Abstract:
Multiple sclerosis (MS) is a disease that is characterized by immune-mediated destruction of CNS myelin. Current MS therapies aim to block peripheral immune cells from entering the CNS. Although these treatments limit new inflammatory activity in the CNS, no treatment effectively prevents long-term disease progression and disability accumulation in MS patients. One explanation for this paradox is that current therapies are ineffective at targeting immune responses already present in the CNS. To this end, we sought to understand the metabolic properties of T cells that mediate ongoing inflammation in the demyelinating CNS. Using experimental autoimmune encephalomyelitis (EAE) in C57BL/6 mice, a well-studied model of MS, we showed that the CD4+ and CD8+ T cells that invade the EAE CNS are highly glycolytic. Elevated glycolytic rates in T cells isolated from the EAE CNS correlate with upregulated expression of glycolytic machinery and is essential for inflammatory responses to myelin. Surprisingly, we found that an inhibitor of GAPDH, 3-bromopyruvic acid (3-BrPa), blocks IFN-γ, but not IL-17A, production in immune cells isolated from the EAE CNS. Indeed, in vitro studies confirmed that the production of IFN-γ by differentiated Th1 cells is more sensitive to 3-BrPa than is the production of IL-17A by Th17 cells. Finally, in transfer models of EAE, 3-BrPa robustly attenuates the encephalitogenic potential of EAE-driving immune cells. To our knowledge, these data are among the first to demonstrate the metabolic properties of T cells in the demyelinating CNS in vivo.
Insights
T cells driving multiple sclerosis (MS) inflammation in the central nervous system (CNS) rely heavily on glycolysis. Inhibiting this metabolic pathway with 3-bromopyruvic acid (3-BrPa) reduced T cell inflammatory potential in a mouse model.
Area of Science:
- Neuroimmunology
- Cellular Metabolism
- Autoimmune Diseases
Background:
- Multiple sclerosis (MS) involves immune-mediated myelin destruction in the CNS.
- Current MS therapies target peripheral immune cells but fail to prevent long-term progression.
- Existing treatments do not address ongoing CNS inflammation effectively.
Purpose of the Study:
- To investigate the metabolic characteristics of T cells involved in CNS inflammation in MS.
- To identify potential metabolic targets for novel MS therapies.
Main Methods:
- Utilized the experimental autoimmune encephalomyelitis (EAE) mouse model of MS.
- Analyzed metabolic properties (glycolysis) of CD4+ and CD8+ T cells in the EAE CNS.
- Assessed the impact of a GAPDH inhibitor (3-bromopyruvic acid) on T cell function and EAE progression.
Main Results:
- T cells infiltrating the EAE CNS exhibit high glycolytic rates.
- Elevated glycolysis in CNS T cells correlates with upregulated metabolic machinery.
- 3-bromopyruvic acid selectively inhibited IFN-γ production and reduced the encephalitogenic potential of T cells.
- 3-BrPa demonstrated differential sensitivity between Th1 and Th17 cell responses.
Conclusions:
- T cell glycolysis is crucial for inflammatory responses in the demyelinating CNS.
- Targeting T cell metabolism, specifically glycolysis, presents a potential therapeutic strategy for MS.
- 3-bromopyruvic acid shows promise in attenuating T cell-mediated neuroinflammation in vivo.
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