Glioblastoma cell motility depends on enhanced oxidative stress coupled with mobilization of a sulfurtransferase.
Mirca S Saurty-SeerunghenThomas DaubonLéa BellengerVirgile DelaunayGloria CastroJoris GuyonAhmed RezkSylvie FabregaAhmed IdbaihFabien AlmairacFanny Burel-VandenbosLaurent TurchiEric DuplusThierry VirolleJean-Michel PeyrinChristophe AntoniewskiHervé ChneiweissElias A El-HabrMarie-Pierre JunierPublished in: Cell death & disease (2022)
Cell motility is critical for tumor malignancy. Metabolism being an obligatory step in shaping cell behavior, we looked for metabolic weaknesses shared by motile cells across the diverse genetic contexts of patients' glioblastoma. Computational analyses of single-cell transcriptomes from thirty patients' tumors isolated cells with high motile potential and highlighted their metabolic specificities. These cells were characterized by enhanced mitochondrial load and oxidative stress coupled with mobilization of the cysteine metabolism enzyme 3-Mercaptopyruvate sulfurtransferase (MPST). Functional assays with patients' tumor-derived cells and -tissue organoids, and genetic and pharmacological manipulations confirmed that the cells depend on enhanced ROS production and MPST activity for their motility. MPST action involved protection of protein cysteine residues from damaging hyperoxidation. Its knockdown translated in reduced tumor burden, and a robust increase in mice survival. Starting from cell-by-cell analyses of the patients' tumors, our work unravels metabolic dependencies of cell malignancy maintained across heterogeneous genomic landscapes.
Keyphrases
- single cell
- induced apoptosis
- oxidative stress
- end stage renal disease
- ejection fraction
- newly diagnosed
- chronic kidney disease
- cell cycle arrest
- cell therapy
- prognostic factors
- dna damage
- gene expression
- escherichia coli
- peritoneal dialysis
- rna seq
- signaling pathway
- high throughput
- staphylococcus aureus
- type diabetes
- stem cells
- cell death
- genome wide
- metabolic syndrome
- risk assessment
- reactive oxygen species
- binding protein
- mesenchymal stem cells
- amino acid
- human health