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Analysis of Human T Cell Activity in an Allogeneic Co-Culture Setting of Pre-Treated Tumor Cells
Published on: March 7, 2025
Therapeutic Targeting of Tumor Cells and Tumor Immune Microenvironment Vulnerabilities
Balaraman Kalyanaraman1,2, Gang Cheng1, Micael Hardy3
1Department of Biophysics, Medical College of Wisconsin, Milwaukee, WI, United States.
Abstract:
Therapeutic targeting of tumor vulnerabilities is emerging as a key area of research. This review is focused on exploiting the vulnerabilities of tumor cells and the immune cells in the tumor immune microenvironment (TIME), including tumor hypoxia, tumor acidity, the bidirectional proton-coupled monocarboxylate transporters (MCTs) of lactate, mitochondrial oxidative phosphorylation (OXPHOS), and redox enzymes in the tricarboxylic acid cycle. Cancer cells use glucose for energy even under normoxic conditions. Although cancer cells predominantly rely on glycolysis, many have fully functional mitochondria, suggesting that mitochondria are a vulnerable target organelle in cancer cells. Thus, one key distinction between cancer and normal cell metabolism is metabolic reprogramming. Mitochondria-targeted small molecule inhibitors of OXPHOS inhibit tumor proliferation and growth. Another hallmark of cancer is extracellular acidification due lactate accumulation. Emerging results show that lactate acts as a fuel for mitochondrial metabolism and supports tumor proliferation and growth. Metabolic reprogramming occurs in glycolysis-deficient tumor phenotypes and in kinase-targeted, drug-resistant cancers overexpressing OXPHOS genes. Glycolytic cancer cells located away from the vasculature overexpress MCT4 transporter to prevent overacidification by exporting lactate, and the oxidative cancer cells located near the vasculature express MCT1 transporter to provide energy through incorporation of lactate into the tricarboxylic acid cycle. MCTs are, therefore, a vulnerable target in cancer metabolism. MCT inhibitors exert synthetic lethality in combination with metformin, a weak inhibitor of OXPHOS, in cancer cells. Simultaneously targeting multiple vulnerabilities within mitochondria shows synergistic antiproliferative and antitumor effects. Developing tumor-selective, small molecule inhibitors of OXPHOS with a high therapeutic index is critical to fully exploiting the mitochondrial vulnerabilities. We and others developed small-molecule inhibitors containing triphenylphosphonium cation that potently inhibit OXPHOS in tumor cells and tissues. Factors affecting tumor cell vulnerabilities also impact immune cells in the TIME. Glycolytic tumor cells supply lactate to the tumor-suppressing regulatory T cells overexpressing MCTs. Therapeutic opportunities for targeting vulnerabilities in tumor cells and the TIME, as well as the implications on cancer health disparities and cancer treatment, are addressed.
Insights
Targeting tumor cell and immune cell metabolic vulnerabilities, including mitochondrial oxidative phosphorylation (OXPHOS) and lactate transport via monocarboxylate transporters (MCTs), offers new therapeutic strategies for cancer treatment.
Area of Science:
- Oncology
- Cancer Metabolism
- Immunology
Background:
- Cancer cells exhibit metabolic reprogramming, utilizing glycolysis and functional mitochondria.
- Tumor microenvironments (TIME) present unique vulnerabilities like hypoxia, acidity, and altered metabolic pathways.
- Lactate accumulation and transport via monocarboxylate transporters (MCTs) are critical for cancer cell proliferation and immune modulation.
Purpose of the Study:
- To review therapeutic strategies targeting tumor cell and TIME metabolic vulnerabilities.
- To explore the role of mitochondrial oxidative phosphorylation (OXPHOS) and lactate metabolism in cancer.
- To discuss the implications of targeting these vulnerabilities for cancer treatment and health disparities.
Main Methods:
- Review of current literature on cancer metabolism and therapeutic targeting.
- Analysis of metabolic pathways including glycolysis, OXPHOS, and lactate transport (MCTs).
- Discussion of small molecule inhibitors and combination therapies.
Main Results:
- Mitochondria and MCTs represent vulnerable targets in cancer metabolism.
- Inhibiting OXPHOS and targeting MCTs show synergistic antiproliferative and antitumor effects.
- Targeting tumor metabolic vulnerabilities impacts immune cells within the TIME.
Conclusions:
- Simultaneously targeting multiple mitochondrial and metabolic vulnerabilities offers potent antitumor effects.
- Developing tumor-selective inhibitors of OXPHOS is crucial for effective cancer therapy.
- Exploiting these vulnerabilities presents therapeutic opportunities with implications for cancer health disparities.
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