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Published on: July 21, 2018
A central role for Foxp3+ regulatory T cells in K-Ras-driven lung tumorigenesis
Courtney A Granville1, Regan M Memmott, Andria Balogh
1Medical Oncology Branch, Center for Cancer Research, National Cancer Institute, Bethesda, Maryland, USA.
Background:
K-Ras mutations are characteristic of human lung adenocarcinomas and occur almost exclusively in smokers. In preclinical models, K-Ras mutations are necessary for tobacco carcinogen-driven lung tumorigenesis and are sufficient to cause lung adenocarcinomas in transgenic mice. Because these mutations confer resistance to commonly used cytotoxic chemotherapies and targeted agents, effective therapies that target K-Ras are needed. Inhibitors of mTOR such as rapamycin can prevent K-Ras-driven lung tumorigenesis and alter the proportion of cytotoxic and Foxp3+ regulatory T cells, suggesting that lung-associated T cells might be important for tumorigenesis.
Methods:
Lung tumorigenesis was studied in three murine models that depend on mutant K-Ras; a tobacco carcinogen-driven model, a syngeneic inoculation model, and a transgenic model. Splenic and lung-associated T cells were studied using flow cytometry and immunohistochemistry. Foxp3+ cells were depleted using rapamycin, an antibody, or genetic ablation.
Results:
Exposure of A/J mice to a tobacco carcinogen tripled lung-associated Foxp3+ cells prior to tumor development. At clinically relevant concentrations, rapamycin prevented this induction and reduced lung tumors by 90%. In A/J mice inoculated with lung adenocarcinoma cells resistant to rapamycin, antibody-mediated depletion of Foxp3+ cells reduced lung tumorigenesis by 80%. Likewise, mutant K-Ras transgenic mice lacking Foxp3+ cells developed 75% fewer lung tumors than littermates with Foxp3+ cells.
Conclusions:
Foxp3+ regulatory T cells are required for K-Ras-mediated lung tumorigenesis in mice. These studies support clinical testing of rapamycin or other agents that target Treg in K-Ras driven human lung cancer.
Insights
Foxp3+ regulatory T cells are essential for K-Ras-driven lung tumor development in mice. Targeting these cells with rapamycin or other agents may offer new therapeutic strategies for K-Ras-mutant lung cancer.
Area of Science:
- Oncology
- Immunology
- Pulmonology
Background:
- K-Ras mutations are prevalent in human lung adenocarcinomas, particularly in smokers.
- These mutations are crucial for tobacco carcinogen-induced lung tumorigenesis and confer resistance to conventional therapies.
- Targeting K-Ras-driven lung cancer necessitates the development of novel therapeutic approaches.
Purpose of the Study:
- To investigate the role of Foxp3+ regulatory T cells in K-Ras-mediated lung tumorigenesis.
- To evaluate the efficacy of mTOR inhibitors, such as rapamycin, in preventing K-Ras-driven lung tumor development.
- To explore therapeutic strategies targeting regulatory T cells for K-Ras-driven lung cancer.
Main Methods:
- Utilized three murine models of K-Ras-dependent lung tumorigenesis: carcinogen-driven, syngeneic inoculation, and transgenic.
- Analyzed splenic and lung-associated T cells using flow cytometry and immunohistochemistry.
- Depleted Foxp3+ cells via rapamycin, antibody administration, or genetic ablation.
Main Results:
- Tobacco carcinogen exposure significantly increased lung-associated Foxp3+ cells in mice.
- Rapamycin treatment prevented this increase and reduced lung tumors by 90%.
- Depletion of Foxp3+ cells, through antibodies or genetic means, markedly reduced lung tumorigenesis by 75-80%.
Conclusions:
- Foxp3+ regulatory T cells are indispensable for K-Ras-mediated lung tumorigenesis in murine models.
- These findings advocate for clinical trials of rapamycin or Treg-targeting agents in K-Ras-driven human lung cancers.
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