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Metabolic Factors Affecting Tumor Immunogenicity: What Is Happening at the Cellular Level?
Rola El Sayed1, Yolla Haibe2, Ghid Amhaz2
1Global Health Institute, American University of Beirut, Beirut 11-0236, Lebanon.
Abstract:
Immunotherapy has changed the treatment paradigm in multiple solid and hematologic malignancies. However, response remains limited in a significant number of cases, with tumors developing innate or acquired resistance to checkpoint inhibition. Certain "hot" or "immune-sensitive" tumors become "cold" or "immune-resistant", with resultant tumor growth and disease progression. Multiple factors are at play both at the cellular and host levels. The tumor microenvironment (TME) contributes the most to immune-resistance, with nutrient deficiency, hypoxia, acidity and different secreted inflammatory markers, all contributing to modulation of immune-metabolism and reprogramming of immune cells towards pro- or anti-inflammatory phenotypes. Both the tumor and surrounding immune cells require high amounts of glucose, amino acids and fatty acids to fulfill their energy demands. Thus, both compete over one pool of nutrients that falls short on needs, obliging cells to resort to alternative adaptive metabolic mechanisms that take part in shaping their inflammatory phenotypes. Aerobic or anaerobic glycolysis, oxidative phosphorylation, tryptophan catabolism, glutaminolysis, fatty acid synthesis or fatty acid oxidation, etc. are all mechanisms that contribute to immune modulation. Different pathways are triggered leading to genetic and epigenetic modulation with consequent reprogramming of immune cells such as T-cells (effector, memory or regulatory), tumor-associated macrophages (TAMs) (M1 or M2), natural killers (NK) cells (active or senescent), and dendritic cells (DC) (effector or tolerogenic), etc. Even host factors such as inflammatory conditions, obesity, caloric deficit, gender, infections, microbiota and smoking status, may be as well contributory to immune modulation, anti-tumor immunity and response to immune checkpoint inhibition. Given the complex and delicate metabolic networks within the tumor microenvironment controlling immune response, targeting key metabolic modulators may represent a valid therapeutic option to be combined with checkpoint inhibitors in an attempt to regain immune function.
Insights
Immunotherapy resistance in cancer is linked to the tumor microenvironment
Area of Science:
- Oncology
- Immunology
- Metabolic Research
Background:
- Immunotherapy has revolutionized cancer treatment but faces challenges due to tumor resistance.
- Tumor microenvironment (TME) factors like nutrient deprivation and hypoxia drive immune resistance.
- Metabolic reprogramming within the TME significantly impacts anti-tumor immunity.
Purpose of the Study:
- To explore the role of metabolic pathways in tumor immune resistance.
- To understand how metabolic adaptations in the TME influence immune cell function.
- To identify potential therapeutic targets for overcoming immunotherapy resistance.
Main Methods:
- Review of current literature on tumor metabolism and immune cell reprogramming.
- Analysis of metabolic pathways involved in nutrient competition within the TME.
- Examination of host factors influencing immune modulation and treatment response.
Main Results:
- Tumor and immune cells compete for nutrients, forcing metabolic adaptations.
- Metabolic pathways (e.g., glycolysis, glutaminolysis) reprogram immune cells (T-cells, macrophages, NK cells, dendritic cells).
- Host factors like obesity and microbiota composition also modulate anti-tumor immunity.
Conclusions:
- Targeting metabolic pathways in the TME is a promising strategy to enhance immunotherapy.
- Combined therapeutic approaches targeting metabolism and immune checkpoints may overcome resistance.
- Further research into metabolic modulation could improve cancer treatment outcomes.
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