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.

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.