Lessons learned from studies of natural resistance in murine experimental autoimmune encephalomyelitis

Harley Y Tse1, Jinzhu Li2, Xiaoqing Zhao3

  • 1Department of Immunology and Microbiology, Wayne State University, School of Medicine, Detroit, MI 48201 ; Department of Neurology, Wayne State University, School of Medicine, Detroit, MI 48201.

Current Trends in Immunology
|May 6, 2014
PubMed

Insights

Investigating resistance to experimental autoimmune encephalomyelitis (EAE), a multiple sclerosis model, reveals that resistance can be overcome by adoptive T cell transfer and antigenic challenge. Regulatory T cells (Tregs) and antigen specificity also play key roles in EAE resistance.

Area of Science:

  • Neuroimmunology
  • Autoimmune diseases

Background:

  • Experimental autoimmune encephalomyelitis (EAE) is a key animal model for multiple sclerosis (MS).
  • EAE susceptibility is genetically controlled, with focus historically on disease mechanisms rather than resistance.
  • Understanding EAE resistance mechanisms offers insights into autoimmune disease regulation.

Purpose of the Study:

  • To investigate the mechanisms underlying resistance to EAE induction.
  • To explore the role of T cells and antigen specificity in overcoming EAE resistance.
  • To examine the contribution of regulatory T cells (Tregs) to EAE resistance.

Main Methods:

  • Adoptive transfer of T cells into resistant mouse strains followed by antigenic challenge.
  • Depletion of regulatory T cells (Tregs) using anti-CD25 antibodies.
  • Immunization with different myelin antigens (MBP, MOG, PLP139-151) to assess antigen-specific resistance.

Main Results:

  • EAE resistance in mice can be reversed by adoptive T cell transfer and subsequent antigenic challenge, indicating donor T cell mediation.
  • Antigenic challenge can induce an anamnestic response in persistent donor T cells, even after long periods.
  • Depletion of Tregs partially reversed EAE resistance in some mouse strains, suggesting strain- and antigen-specific regulatory roles.
  • EAE resistance is antigen-dependent, with some mouse strains resistant to one antigen but susceptible to another.

Conclusions:

  • EAE resistance is a regulated process influenced by T cell activity, antigen specificity, and regulatory mechanisms.
  • Adoptive transfer models combined with Treg depletion and antigen variation provide powerful tools to study EAE resistance.
  • Further research using advanced technologies can elucidate the fundamental mechanisms of EAE resistance, potentially informing MS therapies.

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