Glutamine Metabolism in Cancer Stem Cells: A Complex Liaison in the Tumor Microenvironment
Abstract
:1. Glutamine Metabolism
2. Glutamine Metabolism in CSC
2.1. Glutamine and Redox Homeostasis in CSC
2.2. Glutamine, TCA Cycle, Anaplerotic and Cataplerotic Fluxes in CSC
2.3. Glutamine and Epigenetic Modifications in CSC
2.4. Stem Marker Proteins and Glutamine Metabolism: Direct Interplay
3. Glutamine Metabolism in Tumor Microenvironment: Tumor-Stroma Crosstalk Might Regulate CSC
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Cell Type | Gln-Dependent Metabolic Pathway | Impact on Stemness | Stemness Markers | References |
---|---|---|---|---|
Embryonal carcinoma (EC) | GSH biosynthesis | + | Oct4, Nanog, Sox2 Sphere formation | [35] |
Triple-negative breast cancer (TNBC) | GSH biosynthesis | + | GD2 Sphere formation | [36] |
Prostate cancer | GSH biosynthesis | + | ALDH activity Sphere formation Tumor initiation | [37] |
Head and neck squamous cell carcinoma (HNSCC) | GSH biosynthesis | + | CD44v Sphere formation Tumor initiation | [38] |
Pancreatic ductal adenocarcinoma (PDAC) | GOT1-dependent NADPH biosynthesis | + | CD44, CD133, ESA, ALDH1 Sphere formation Tumor initiation | [39] |
Head and neck squamous cell carcinoma (HNSCC) | glutaminolysis and TCA cycle | + | CD44v | [42] |
Non-small-cell lung cancer (NSCLC) | IDH2-dependent NADPH biosynthesis | + | Sphere formation | [44] |
Glioblastoma (GBM) | IDH1-dependent NADPH biosynthesis | + | Sphere formation Tumor initiation | [48] |
NSCLC, GBM | GSH-mediated β-catenin stability | + | Side population Sox2, ABCG2 Tumor initiation | [50] |
Hepatocellular carcinoma (HCC) | GSH-mediated β-catenin nuclear translocation | + | Oct4, Nanog, Sox2, CD44, CD133, KLF4 Sphere formation | [51] |
Epithelial ovarian cancer colorectal cancer (CRC) | ROS-mediated ERK1/2-dependent DRP1 activation | − | Oct4, Sox2, Nanog, ABCG2, CD44 ALDH activity Sphere formation | [52] |
HCC | mitochondrial ATP production | + | P-glycoprotein CD49, CD99, CD34 | [53] |
Ovarian clear cell adenocarcinoma (OCCA) Cervical squamous cell carcinoma (CSCC) | Amino acids biosynthesis | + | Sphere formation | [55] |
GBM | TCA cycle and amino acids biosynthesis | + | Sphere formation | [56] |
GBM | Amino acids biosynthesis | + | Sphere formation | [57] |
GBM | Glutamate biosynthesis | + | Sphere formation | [61] |
GBM | Nucleotides biosynthesis | + | CD133, Sox2, Olig2 | [63] |
GBM | Nucleotides biosynthesis | + | Sox2, NES, Olig2 Sphere formation Tumor initiation | [65] |
HCC | Nucleotides biosynthesis | − | Oct4, Sox2, KLF4, CD133 Sphere formation | [66] |
PDAC | Nucleotides biosynthesis | − | Sphere formation Tumor initiation | [67] |
Breast carcinoma NSCLC | Nucleotides biosynthesis | + | CD44, CD24 Clonogenicity assay | [68] |
PDAC | NH4+ production | + | Sphere formation | [75] |
GBM | IDH1-dependent αKG biosynthesis | + | Sphere formation Tumor initiation | [48] |
GBM | αKG-dependent histone demethylation | + | Sphere formation Tumor initiation | [48] |
Prostate cancer | αKG-dependent histone demethylation | + | ALDH activity Sphere formation Tumor initiation | [37] |
CRC | αKG biosynthesis | − | Lgr5 Organoid formation Tumor initiation | [81] |
Melanoma TNBC | αKG biosynthesis | − | CD271, ABCB5, CD133, Nanog, Sox2, NES, KLF4 | [1] |
PDAC | TCA cycle | + | CD44 Organoid formation Tumor initiation | [84] |
HNSCC | Glutamate biosynthesis and | + | CD44, ALDH | [88] |
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Pacifico, F.; Leonardi, A.; Crescenzi, E. Glutamine Metabolism in Cancer Stem Cells: A Complex Liaison in the Tumor Microenvironment. Int. J. Mol. Sci. 2023, 24, 2337. https://doi.org/10.3390/ijms24032337
Pacifico F, Leonardi A, Crescenzi E. Glutamine Metabolism in Cancer Stem Cells: A Complex Liaison in the Tumor Microenvironment. International Journal of Molecular Sciences. 2023; 24(3):2337. https://doi.org/10.3390/ijms24032337
Chicago/Turabian StylePacifico, Francesco, Antonio Leonardi, and Elvira Crescenzi. 2023. "Glutamine Metabolism in Cancer Stem Cells: A Complex Liaison in the Tumor Microenvironment" International Journal of Molecular Sciences 24, no. 3: 2337. https://doi.org/10.3390/ijms24032337
APA StylePacifico, F., Leonardi, A., & Crescenzi, E. (2023). Glutamine Metabolism in Cancer Stem Cells: A Complex Liaison in the Tumor Microenvironment. International Journal of Molecular Sciences, 24(3), 2337. https://doi.org/10.3390/ijms24032337