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CD38 expression by neonatal human naive CD4+ T cells shapes their distinct metabolic and tolerogenic properties

  • Laura R Dwyer
  • , Andrea M DeRogatis
  • , Sean Clancy
  • , Victoire Gouirand
  • , Charles Chien
  • , Elizabeth E Rogers
  • , Scott P Oltman
  • , Laura L Jelliffe-Pawlowski
  • , Theo van den Broek
  • , Femke van Wijk
  • , Susan V Lynch
  • , Rachel L Rutishauser
  • , Allon Wagner
  • , Alexis J Combes
  • , Tiffany C Scharschmidt*
  • *Corresponding author for this work

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

Neonatal life is marked by rapid antigen exposure, necessitating establishment of peripheral immune tolerance via conversion of naive CD4+ T cells into Tregs. We demonstrated heightened capacity for FOXP3 expression and tolerogenic function among cord blood versus adult blood naive CD4+ T cells. Further, this was linked to a distinct cord blood metabolic profile and elevated neonatal expression of the NADase, CD38. Early-life naive CD4+ T cells demonstrated a metabolic preference for glycolysis, which directly facilitated their differentiation trajectory. We revealed an age-dependent gradient in CD38 levels on naive CD4+ T cells and showed that high CD38 expression contributes to the glycolytic state and tolerogenic potential of neonatal CD4+ T cells, effects mediated at least partly via the NAD-dependent deacetylase SIRT1. Thus, the early-life window for peripheral tolerance in humans is critically enabled by the immunometabolic state of the naive CD4+ compartment.

Original languageEnglish
Number of pages17
JournalThe Journal of clinical investigation
Volume136
Issue number8
Early online date26 Feb 2026
DOIs
Publication statusPublished - 15 Apr 2026

Keywords

  • Development
  • Immunology
  • Metabolism
  • T cell development
  • Tolerance
  • Tregs

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