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Cristina Oliveras-Ferraros1, Sílvia Cufí, Alejandro Vazquez-Martin
1Translational Research Laboratory, Catalan Institute of Oncology, Girona, Catalonia, Spain.
Abstract:
Active avoidance by tumor cells from attack and elimination by immune cells is an emerging cancer hallmark that is achieved primarily through decreasing the levels of major histocompatibility complex class I (MHC-I) at the cancer cells' surface. Deficiencies in MHC-I antigen-restricted immunosurveillance may be intertwined with an altered, Warburg-like cancer cell-intrinsic metabolism, another emerging hallmark of cancer that involves a switch from mitochondrial respiration to glycolysis to efficiently support large-scale biosynthetic programs that are required for active cell proliferation. We recently envisioned that intervention strategies aimed at reversing the bioenergetic signature of cancer cells (e.g., the antidiabetic biguanide metformin) should correct oncogene (e.g., HER2)-driven MHC-I defects, thus preventing immune escape of oncogene transformants. First, we explored how metformin treatment impacted mitochondrial biogenesis in cultured breast cancer cells overexpressing the membrane tyrosine kinase receptor HER2, the best-characterized downregulator of MHC-I. Metformin exposure was found to dose-dependently increase the expression levels of cytochrome c oxidase I and mitochondrial succinate dehydrogenase, which are encoded by mitochondrial and nuclear DNA, respectively. Second, we explored whether metformin-enhanced mitochondrial biogenesis might significantly alter the MHC-I status in breast carcinoma cells. MHC-I expression, as assessed by flow cytometry using an anti-HLA-ABC monoclonal antibody, was fully restored (up to ~25-fold upregulation) in MHC-I-negative HER2 gene-amplified carcinoma cells. These findings may help delineate a previously unrecognized mechanism through which metformin (and metformin-like drugs) may enable a cancer patient's own immune system to mount an efficient anti-metastasis response that can prevent or delay disease recurrence. Restored antigenicity and immunogenicity of tumor cells may represent a previously unrecognized primary mode of action underlying the cancer-preventive effects of metformin.
Insights
Metformin treatment can restore major histocompatibility complex class I (MHC-I) expression on cancer cells by enhancing mitochondrial biogenesis. This finding suggests metformin may help the immune system fight cancer by improving tumor cell antigenicity.
Area of Science:
- Oncology
- Immunology
- Metabolic pathways
Background:
- Cancer cells evade immune attack by reducing major histocompatibility complex class I (MHC-I) on their surface.
- This immune evasion is linked to altered cancer cell metabolism, specifically a shift towards glycolysis (Warburg effect).
- Oncogenes like HER2 can drive both metabolic changes and MHC-I downregulation, promoting cancer cell proliferation and immune escape.
Purpose of the Study:
- To investigate if metformin, an antidiabetic drug, can reverse oncogene-driven MHC-I defects by altering cancer cell metabolism.
- To explore the impact of metformin on mitochondrial biogenesis in breast cancer cells overexpressing HER2.
- To determine if metformin-induced metabolic changes restore MHC-I expression and cancer cell antigenicity.
Main Methods:
- Cultured breast cancer cells overexpressing HER2 were treated with metformin.
- Mitochondrial biogenesis was assessed by measuring the expression of mitochondrial and nuclear DNA-encoded proteins (cytochrome c oxidase I, succinate dehydrogenase).
- MHC-I expression levels on cancer cells were quantified using flow cytometry with an anti-HLA-ABC antibody.
Main Results:
- Metformin treatment dose-dependently increased the expression of key mitochondrial biogenesis markers.
- Metformin significantly upregulated MHC-I expression in MHC-I-negative, HER2-amplified breast cancer cells, restoring antigen presentation.
- Restoration of MHC-I expression was substantial, reaching up to a ~25-fold increase.
Conclusions:
- Metformin can reverse HER2-driven MHC-I downregulation by enhancing mitochondrial biogenesis in cancer cells.
- This restoration of MHC-I expression may represent a novel mechanism by which metformin aids the immune system in combating cancer.
- Metformin's ability to improve tumor cell antigenicity could be a key factor in its potential anti-metastasis and cancer-preventive effects.
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