NLRX1 Regulates Effector and Metabolic Functions of CD4+ T Cells

Andrew Leber1, Raquel Hontecillas1, Nuria Tubau-Juni1

  • 1Nutritional Immunology and Molecular Medicine Laboratory, Biocomplexity Institute of Virginia Tech, Blacksburg, VA 24061.

Insights

Nucleotide oligomerization domain-like receptor X1 (NLRX1) deficiency enhances CD4+ T cell inflammation and proliferation by altering metabolism and immune checkpoint sensitivity, worsening colitis severity.

Area of Science:

  • Immunology
  • Cell Biology
  • Metabolic pathways

Background:

  • Nucleotide oligomerization domain-like receptor X1 (NLRX1) is linked to viral responses, cancer, and inflammation.
  • Its specific role in CD4+ T cell function and metabolism remains unclear.
  • NLRX1 loss exacerbates inflammatory conditions like colitis in mice.

Purpose of the Study:

  • To investigate the function of NLRX1 in modulating CD4+ T cell differentiation, proliferation, and metabolism.
  • To determine the impact of NLRX1 deficiency on immune checkpoint pathways.
  • To elucidate the contribution of NLRX1 to inflammatory disease pathogenesis.

Main Methods:

  • In vitro CD4+ T cell differentiation assays.
  • Metabolic analysis including lactate dehydrogenase activity.
  • Adoptive transfer models of colitis (dextran sodium sulfate and Citrobacter rodentium).
  • CD4-specific NLRX1 knockout models.

Main Results:

  • NLRX1-deficient CD4+ T cells exhibit enhanced differentiation into inflammatory phenotypes (Th1, Th17) and increased proliferation.
  • NLRX1 deficiency leads to reduced sensitivity to immune checkpoint pathways and altered metabolic activity (aerobic glycolysis).
  • Adoptive transfer of NLRX1-deficient T cells exacerbates colitis, while regulatory T cell function remains unaffected.
  • CD4-specific NLRX1 knockout worsens colitis, confirming T cell-intrinsic effects.

Conclusions:

  • NLRX1 acts as a crucial regulator of CD4+ T cell metabolism and immune responses.
  • NLRX1 deficiency promotes T cell inflammation and proliferation through metabolic reprogramming and immune evasion.
  • Targeting NLRX1 could offer therapeutic strategies for inflammatory and autoimmune diseases.

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