Glucose deprivation inhibits multiple key gene expression events and effector functions in CD8+ T cells

Candace M Cham1, Gregory Driessens, James P O'Keefe

  • 1Committee on Cancer Biology, The University of Chicago, Chicago, IL 60637, USA.

Insights

Glucose metabolism is critical for CD8(+) T-cell effector functions, including cytokine production and cell proliferation. Inhibiting glucose utilization selectively impairs key immune responses, impacting cellular immunity in solid tumors.

Area of Science:

  • Immunology
  • Cellular Metabolism

Background:

  • CD8(+) T-cell differentiation into effector cells involves increased glucose metabolism.
  • Previous studies showed glucose deprivation selectively inhibits IFN-gamma production.

Purpose of the Study:

  • To investigate the global role of glucose metabolism in CD8(+) effector T-cell function.
  • To identify specific effector functions regulated by glucose metabolism.

Main Methods:

  • Gene array analysis of CD8(+) effector T cells stimulated with or without 2-deoxy-D-glucose (2-DG).
  • Assessment of cytokine production (IFN-gamma, IL-2, GM-CSF), cell cycle progression, protein upregulation (cyclin D2, granzyme B), and cytolytic activity.

Main Results:

  • 2-DG inhibited only 10% of TCR/CD28-induced genes, including those for cytokines, cell cycle, and cytotoxic proteins.
  • IFN-gamma, GM-CSF production, cell cycle progression, cyclin D2 and granzyme B upregulation, and cytolytic activity were highly glucose-dependent.
  • Oxygen deprivation did not inhibit these CD8(+) T-cell effector functions.

Conclusions:

  • Glucose metabolism plays a critical role in regulating specific CD8(+) T-cell effector functions.
  • These findings have implications for cellular immune responses in microenvironments like solid tumors.

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