PTBP1 Lactylation Promotes Glioma Stem Cell Maintenance through PFKFB4-Driven Glycolysis

Cancer Res. 2025 Feb 17;85(4):739-757. doi: 10.1158/0008-5472.CAN-24-1412.

Abstract

Long-standing evidence implicates glioma stem cells (GSC) as the major driver for glioma propagation and recurrence. GSCs have a distinctive metabolic landscape characterized by elevated glycolysis. Lactate accumulation resulting from enhanced glycolytic activity can drive lysine lactylation to regulate protein functions, suggesting that elucidating the lactylation landscape in GSCs could provide insights into glioma biology. Herein, we have demonstrated that global lactylation was significantly elevated in GSCs compared with differentiated glioma cells. Polypyrimidine tract-binding protein 1 (PTBP1), a central regulator of RNA processing, was hyperlactylated in GSCs, and SIRT1 induced PTBP1 delactylation. PTBP1-K436 lactylation supported glioma progression and GSC maintenance. Mechanistically, K436 lactylation inhibited PTBP1 proteasomal degradation by attenuating the interaction with TRIM21. Moreover, PTBP1 lactylation enhanced RNA-binding capacity and facilitated PFKFB4 mRNA stabilization, which further increased glycolysis. Together, these findings uncovered a lactylation-mediated mechanism in GSCs driven by metabolic reprogramming that induces aberrant epigenetic modifications to further stimulate glycolysis, resulting in a vicious cycle to exacerbate tumorigenesis. Significance: Glycolysis-induced lactylation enhances the function of PTBP1 to promote glioma stem cell maintenance, indicating that PTBP1 lactylation could be a potential target for the development of innovative glioma therapies.

MeSH terms

  • Animals
  • Brain Neoplasms* / genetics
  • Brain Neoplasms* / metabolism
  • Brain Neoplasms* / pathology
  • Cell Line, Tumor
  • Gene Expression Regulation, Neoplastic
  • Glioma* / genetics
  • Glioma* / metabolism
  • Glioma* / pathology
  • Glycolysis*
  • Heterogeneous-Nuclear Ribonucleoproteins* / genetics
  • Heterogeneous-Nuclear Ribonucleoproteins* / metabolism
  • Humans
  • Mice
  • Mice, Nude
  • Neoplastic Stem Cells* / metabolism
  • Neoplastic Stem Cells* / pathology
  • Phosphofructokinase-2* / genetics
  • Phosphofructokinase-2* / metabolism
  • Polypyrimidine Tract-Binding Protein* / genetics
  • Polypyrimidine Tract-Binding Protein* / metabolism
  • Sirtuin 1 / metabolism

Substances

  • Polypyrimidine Tract-Binding Protein
  • PTBP1 protein, human
  • Heterogeneous-Nuclear Ribonucleoproteins
  • Phosphofructokinase-2
  • Sirtuin 1
  • SIRT1 protein, human