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Published on: May 18, 2018
Melanoma Evolves Complete Immunotherapy Resistance through the Acquisition of a Hypermetabolic Phenotype
Ashvin R Jaiswal1,2, Arthur J Liu1,2, Shivanand Pudakalakatti3
1Department of Immunology, The University of Texas MD Anderson Cancer Center, Houston, Texas.
Abstract:
Despite the clinical success of T-cell checkpoint blockade, most patients with cancer still fail to have durable responses to immunotherapy. The molecular mechanisms driving checkpoint blockade resistance, whether preexisting or evolved, remain unclear. To address this critical knowledge gap, we treated B16 melanoma with the combination of CTLA-4, PD-1, and PD-L1 blockade and a Flt3 ligand vaccine (≥75% curative), isolated tumors resistant to therapy, and serially passaged them in vivo with the same treatment regimen until they developed complete resistance. Using gene expression analysis and immunogenomics, we determined the adaptations associated with this resistance phenotype. Checkpoint resistance coincided with acquisition of a "hypermetabolic" phenotype characterized by coordinated upregulation of the glycolytic, oxidoreductase, and mitochondrial oxidative phosphorylation pathways. These resistant tumors flourished under hypoxic conditions, whereas metabolically starved T cells lost glycolytic potential, effector function, and the ability to expand in response to immunotherapy. Furthermore, we found that checkpoint-resistant versus -sensitive tumors could be separated by noninvasive MRI imaging based solely on their metabolic state. In a cohort of patients with melanoma resistant to both CTLA-4 and PD-1 blockade, we observed upregulation of pathways indicative of a similar hypermetabolic state. Together, these data indicated that melanoma can evade T-cell checkpoint blockade immunotherapy by adapting a hypermetabolic phenotype.
Insights
Most cancer patients do not respond to immunotherapy. This study reveals that melanoma evades cancer immunotherapy by developing a hypermetabolic state, impacting T-cell function and treatment resistance.
Area of Science:
- Immunology
- Oncology
- Metabolic Research
Background:
- T-cell checkpoint blockade immunotherapy is successful but limited.
- Mechanisms of immunotherapy resistance in cancer are not fully understood.
Purpose of the Study:
- Investigate molecular mechanisms of resistance to combined immunotherapy (CTLA-4, PD-1, PD-L1 blockade) and Flt3 ligand vaccine in melanoma.
- Identify adaptations driving therapy resistance.
Main Methods:
- Serial *in vivo* passaging of B16 melanoma to induce resistance.
- Gene expression analysis and immunogenomics.
- Noninvasive MRI imaging to assess tumor metabolic state.
Main Results:
- Resistant tumors acquired a "hypermetabolic" phenotype with upregulated glycolysis, oxidoreductase, and mitochondrial pathways.
- Resistant tumors thrived in hypoxia; T cells lost function.
- Metabolic state differentiated resistant from sensitive tumors via MRI.
- Human melanoma resistant to checkpoint blockade showed similar metabolic pathway upregulation.
Conclusions:
- Melanoma can develop resistance to T-cell checkpoint blockade immunotherapy by adopting a hypermetabolic phenotype.
- Metabolic adaptation is a key mechanism for immune evasion in cancer.
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