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January 17, 2026Advanced Science0 citationsOpen Access

Targeting the Mapk13‐Tcf1‐Slc7a5 Axis via One‐Carbon Metabolic Regulation to Prevent Chronic Allograft Vasculopathy

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WYWang YiDWDi WuJLJ Liu

Key Points

  • The study aims to understand how stem-like CD4 + T cells sustain their progenitor programs and contribute to chronic allograft vasculopathy.
  • Identification of a metabolic-epigenetic axis involving Mapk13, Tcf1, and Slc7a5
  • Genetic deletion of Mapk13 or Slc7a5 in mouse models
  • Dietary methionine restriction to disrupt the metabolic axis
  • Assessment of Tcf1 + CD4 + T cell stemness in rejecting grafts
  • Disruption of the Mapk13-Tcf1-Slc7a5 axis decreases Tcf1 + CD4 + T cell stemness
  • Prevention of chronic allograft vasculopathy in treated mouse models
  • Enhanced methionine uptake and H3K4me3 enrichment at the Tcf7 locus observed

Abstract

ABSTRACT Chronic allograft vasculopathy (CAV) is driven in part by stem‐like CD4 + T cells, but how these cells sustain their progenitor programs during chronic rejection remains unclear. Here, a metabolic‐epigenetic axis is identified in which Mapk13 phosphorylates Tcf1 at T289, enabling Tcf1 to activate the amino acid transporter Slc7a5 and enhance methionine uptake. This rewires one‐carbon metabolism and increases H3K4me3 enrichment at the Tcf7 locus, thereby maintaining stem‐like CD4 + T cells within rejecting grafts. Disruption of this circuit‐via genetic deletion of Mapk13 or Slc7a5, or through dietary methionine restriction‐reduces Tcf1 + CD4 + T cell stemness and prevents CAV in mouse models. These findings reveal the Mapk13‐Tcf1‐Slc7a5 axis as a critical metabolic dependency of pathogenic T cells and highlight one‐carbon metabolism as a promising target to promote long‐term graft survival.

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Cite This Study

Yi et al. (2026) studied this question.

synapsesocial.com/papers/696b2631d2a12237a93497f7https://doi.org/10.1002/advs.202520815
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