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IL6 Blockade Reprograms the Lung Tumor Microenvironment to Limit the Development and Progression of K-ras-Mutant Lung
Mauricio S Caetano1, Huiyuan Zhang2, Amber M Cumpian1
1Department of Pulmonary Medicine, The University of Texas MD Anderson Cancer Center, Houston, Texas.
Abstract:
Activating mutations of K-ras are the most common oncogenic alterations found in lung cancer. Unfortunately, attempts to target K-ras-mutant lung tumors have thus far failed, clearly indicating the need for new approaches in patients with this molecular profile. We have previously shown NF-κB activation, release of IL6, and activation of its responsive transcription factor STAT3 in K-ras-mutant lung tumors, which was further amplified by the tumor-enhancing effect of chronic obstructive pulmonary disease (COPD)-type airway inflammation. These findings suggest an essential role for this inflammatory pathway in K-ras-mutant lung tumorigenesis and its enhancement by COPD. Therefore, here we blocked IL6 using a monoclonal anti-IL6 antibody in a K-ras-mutant mouse model of lung cancer in the absence or presence of COPD-type airway inflammation. IL6 blockade significantly inhibited lung cancer promotion, tumor cell-intrinsic STAT3 activation, tumor cell proliferation, and angiogenesis markers. Moreover, IL6 inhibition reduced expression of protumor type 2 molecules (arginase 1, Fizz 1, Mgl, and IDO), number of M2-type macrophages and granulocytic myeloid-derived suppressor cells, and protumor T-regulatory/Th17 cell responses. This was accompanied by increased expression of antitumor type 1 molecule (Nos2), and antitumor Th1/CD8 T-cell responses. Our study demonstrates that IL6 blockade not only has direct intrinsic inhibitory effect on tumor cells, but also reeducates the lung microenvironment toward an antitumor phenotype by altering the relative proportion between protumor and antitumor immune cells. This information introduces IL6 as a potential druggable target for prevention and treatment of K-ras-mutant lung tumors. Cancer Res; 76(11); 3189-99. ©2016 AACR.
Insights
Blocking interleukin-6 (IL6) significantly inhibited K-ras-mutant lung cancer growth and promoted an antitumor immune response. This suggests IL6 is a potential therapeutic target for K-ras-mutant lung tumors, especially with chronic obstructive pulmonary disease (COPD).
Area of Science:
- Oncology
- Immunology
- Pulmonology
Background:
- Activating K-ras mutations are common in lung cancer, but direct targeting has failed, necessitating new therapeutic strategies.
- K-ras-mutant lung tumors exhibit NF-κB activation, IL6 release, and STAT3 activation, which is amplified by chronic obstructive pulmonary disease (COPD)-type airway inflammation.
Purpose of the Study:
- To investigate the therapeutic potential of blocking interleukin-6 (IL6) in a K-ras-mutant lung cancer mouse model, with and without COPD-type airway inflammation.
Main Methods:
- Utilized a K-ras-mutant mouse model of lung cancer.
- Administered a monoclonal anti-IL6 antibody to block IL6 signaling.
- Assessed tumor promotion, STAT3 activation, proliferation, angiogenesis, immune cell populations, and cytokine profiles.
Main Results:
- IL6 blockade significantly inhibited lung cancer promotion, STAT3 activation, proliferation, and angiogenesis.
- IL6 inhibition decreased protumor immune cells (M2 macrophages, myeloid-derived suppressor cells, T-regulatory/Th17 cells) and molecules.
- Conversely, IL6 blockade increased antitumor immune cells (Th1/CD8 T-cells) and molecules (Nos2).
Conclusions:
- IL6 blockade exerts direct antitumor effects and reprograms the lung microenvironment towards an antitumor phenotype.
- Targeting IL6 represents a promising strategy for the prevention and treatment of K-ras-mutant lung tumors, particularly in the context of COPD.
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