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Published on: June 20, 2015
Metformin generates profound alterations in systemic and tumor immunity with associated antitumor effects
Ratna Veeramachaneni1, Wangjie Yu2, Jared M Newton2,3
1Department of Head and Neck Surgery, Division of Surgery, University of Texas MD Anderson Cancer Center, Houston, Texas, USA.
Background:
Metformin is a commonly used antidiabetic medication which has demonstrated promise as an anticancer agent alone and in combination with conventional treatment regimens. There is increasing evidence that metformin can also generate immunomodulatory effects in solid tumors and is currently being investigated as an adjunct to immune checkpoint inhibitors (ICIs). We hypothesized that metformin would generate a shift in immunity unfavorable to tumor growth and tested this hypothesis in a preclinical model of head and neck cancer.
Methods:
Using a syngeneic mouse model of human papillomavirus-associated head and neck cancer (mEER/MTEC), we tested the impact of metformin on systemic and local immunity and tumor growth velocity. We compared the effects of acute and chronic treatment regimens on immunocyte presence and activation using a combination of flow cytometry and targeted transcriptomic analysis.
Results:
Acute metformin exposure generated measurable shifts in systemic myeloid and T-cell populations in non-tumor-bearing mice and decreased myeloid derived suppressor cell (MDSC) levels in tumor draining lymph nodes of tumor-bearing mice. Although metformin decreased regulatory T-cell (T-reg) and MDSC levels and increased CD8+ levels in murine tumors when combined with ICIs, acute metformin exposure was insufficient to generate substantial antitumor activity. Conversely, long-term metformin treatment significantly reduced tumor growth velocity, increased the CD8+/T-reg ratio, increased tumor infiltrating lymphocyte levels and upregulated component genes of the previously validated T-cell inflamed expression profile.
Conclusions:
Metformin generates complex systemic and local immune effects which vary as a function of treatment duration. Combinatorial strategies with ICIs must take into account both the complexity and variability of these effects in order to generate maximal antitumor activity in future clinical trials.
Insights
Metformin shows promise in head and neck cancer treatment by modulating the immune system. Long-term use, combined with immune checkpoint inhibitors, significantly reduces tumor growth and enhances anti-tumor immunity.
Area of Science:
- Oncology
- Immunology
- Pharmacology
Background:
- Metformin, an antidiabetic drug, exhibits anticancer potential.
- Emerging evidence suggests metformin modulates tumor immunity, particularly with immune checkpoint inhibitors (ICIs).
Purpose of the Study:
- To investigate metformin's immunomodulatory effects in head and neck cancer.
- To determine if metformin enhances anti-tumor immunity when combined with ICIs.
Main Methods:
- Utilized a syngeneic mouse model of human papillomavirus-associated head and neck cancer (mEER/MTEC).
- Assessed systemic and local immunity and tumor growth velocity under acute and chronic metformin treatment.
- Employed flow cytometry and transcriptomic analysis to evaluate immunocyte populations and activation.
Main Results:
- Acute metformin altered systemic immune cells and reduced myeloid-derived suppressor cells (MDSCs) in tumor-draining lymph nodes.
- While acute metformin with ICIs decreased regulatory T-cells (T-regs) and increased CD8+ T-cells, it didn't yield significant anti-tumor activity.
- Chronic metformin treatment markedly reduced tumor growth, improved the CD8+/T-reg ratio, increased tumor-infiltrating lymphocytes, and upregulated T-cell inflamed gene expression profiles.
Conclusions:
- Metformin induces complex, duration-dependent immune alterations in solid tumors.
- Optimizing combination strategies with ICIs requires understanding metformin's variable immunomodulatory effects for maximal anti-tumor response.
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