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Lactate exposure shapes the metabolic and transcriptomic profile of CD8+ T cells

  • Laura Barbieri
  • , Pedro Veliça
  • , Paulo A. Gameiro
  • , Pedro P. Cunha
  • , Iosifina P. Foskolou
  • , Eric Rullman
  • , David Bargiela
  • , Randall S. Johnson
  • , Helene Rundqvist*
  • *Corresponding author for this work
  • Karolinska Institutet
  • University of Cambridge
  • University of Padua
  • The Francis Crick Institute
  • University College London

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

Introduction: CD8+ T cells infiltrate virtually every tissue to find and destroy infected or mutated cells. They often traverse varying oxygen levels and nutrient-deprived microenvironments. High glycolytic activity in local tissues can result in significant exposure of cytotoxic T cells to the lactate metabolite. Lactate has been known to act as an immunosuppressor, at least in part due to its association with tissue acidosis. Methods: To dissect the role of the lactate anion, independently of pH, we performed phenotypical and metabolic assays, high-throughput RNA sequencing, and mass spectrometry, on primary cultures of murine or human CD8+ T cells exposed to high doses of pH-neutral sodium lactate. Results: The lactate anion is well tolerated by CD8+ T cells in pH neutral conditions. We describe how lactate is taken up by activated CD8+ T cells and can displace glucose as a carbon source. Activation in the presence of sodium lactate significantly alters the CD8+ T cell transcriptome, including the expression key effector differentiation markers such as granzyme B and interferon-gamma. Discussion: Our studies reveal novel metabolic features of lactate utilization by activated CD8+ T cells, and highlight the importance of lactate in shaping the differentiation and activity of cytotoxic T cells.

Original languageEnglish
Article number1101433
JournalFrontiers in immunology
Volume14
DOIs
Publication statusPublished - 2023
Externally publishedYes

Keywords

  • CD8+ T cells
  • lactate
  • metabolism
  • oxygen
  • transcriptome

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