The Warburg effect as a therapeutic target for bladder cancers and intratumoral heterogeneity in associated molecular targets.
Julie E BurnsCarolyn D HurstMargaret A KnowlesRoger M PhillipsSimon J AllisonPublished in: Cancer science (2021)
Bladder cancer is the 10th most common cancer worldwide. For muscle-invasive bladder cancer (MIBC), treatment includes radical cystectomy, radiotherapy, and chemotherapy; however, the outcome is generally poor. For non-muscle-invasive bladder cancer (NMIBC), tumor recurrence is common. There is an urgent need for more effective and less harmful therapeutic approaches. Here, bladder cancer cell metabolic reprogramming to rely on aerobic glycolysis (the Warburg effect) and expression of associated molecular therapeutic targets by bladder cancer cells of different stages and grades, and in freshly resected clinical tissue, is investigated. Importantly, analyses indicate that the Warburg effect is a feature of both NMIBCs and MIBCs. In two in vitro inducible epithelial-mesenchymal transition (EMT) bladder cancer models, EMT stimulation correlated with increased lactate production, the end product of aerobic glycolysis. Protein levels of lactate dehydrogenase A (LDH-A), which promotes pyruvate enzymatic reduction to lactate, were higher in most bladder cancer cell lines (compared with LDH-B, which catalyzes the reverse reaction), but the levels did not closely correlate with aerobic glycolysis rates. Although LDH-A is expressed in normal urothelial cells, LDH-A knockdown by RNAi selectively induced urothelial cancer cell apoptotic death, whereas normal cells were unaffected-identifying LDH-A as a cancer-selective therapeutic target for bladder cancers. LDH-A and other potential therapeutic targets (MCT4 and GLUT1) were expressed in patient clinical specimens; however, positive staining varied in different areas of sections and with distance from a blood vessel. This intratumoral heterogeneity has important therapeutic implications and indicates the possibility of tumor cell metabolic coupling.
Keyphrases
- muscle invasive bladder cancer
- epithelial mesenchymal transition
- urinary tract
- spinal cord injury
- induced apoptosis
- single cell
- papillary thyroid
- high intensity
- cell cycle arrest
- early stage
- cell death
- signaling pathway
- radiation therapy
- transforming growth factor
- high grade
- endoplasmic reticulum stress
- oxidative stress
- squamous cell
- machine learning
- deep learning
- binding protein
- bone marrow
- high glucose
- diabetic rats
- free survival
- amino acid
- endothelial cells
- climate change
- combination therapy
- smoking cessation
- prognostic factors