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Phosphoglycerate mutase regulates Treg differentiation through control of serine synthesis and one-carbon metabolism

GSE269846 Mus musculus Expression profiling by high throughput sequencing 6 samples Submitted 2025/06/06 Platform GPL34328
Summary
The differentiation and suppressive functions of regulatory CD4 T cells (Tregs) are supported by a broad array of metabolic changes, providing potential therapeutic targets for immune modulation. In this study, we focused on the regulatory role of glycolytic enzymes in Tregs and identified phosphoglycerate mutase (PGAM) as being differentially overexpressed in Tregs and associated with a highly suppressive phenotype. Pharmacologic or genetic inhibition of PGAM reduced Treg differentiation and suppressive function while reciprocally inducing markers of a pro-inflammatory, T helper 17 (Th17)-like state. The regulatory role of PGAM was dependent on the contribution of 3-phosphoglycerate (3PG), the PGAM substrate, to de novo serine synthesis. Blocking de novo serine synthesis from 3PG reversed the effect of PGAM inhibition on Treg polarization, while exogenous serine directly inhibited Treg polarization. Addi-tionally, altering serine levels in vivo with a serine/glycine-free diet increased peripheral Tregs and at-tenuated autoimmunity in a murine model of multiple sclerosis. Mechanistically, we found that serine limits Treg polarization by contributing to one-carbon metabolism and methylation of Treg-associated genes. Inhibiting one-carbon metabolism increased Treg polarization and suppressive function both in vitro and in vivo in a murine model of autoimmune colitis. Our study identifies a novel physiologic role for PGAM and highlights the metabolic interconnectivity between glycolysis, serine synthesis, one-car-bon metabolism, and epigenetic regulation of Treg differentiation and suppressive function
Published in
Phosphoglycerate mutase regulates Treg differentiation through control of serine synthesis and one-carbon metabolism
Godfrey WH, Lee JJ, Shanmukha S et al. · eLife 2025 · PMID 40720256 · doi:10.7554/eLife.104423
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Also filed as BioProject PRJNA1124004 and SRA study SRP513923. Searching any of these in the dataset finder brings you back here.

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