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Published on: October 20, 2016
Ccr2+ Monocyte-Derived Macrophages Influence Trajectories of Acquired Therapy Resistance in Braf-Mutant Melanoma
Dahihm Kim1, Luye An1, Jiwon Moon1
1Department of Biomedical Sciences, Cornell University, Ithaca, New York.
Abstract:
Therapies targeting oncogene addiction have had a tremendous impact on tumor growth and patient outcome, but drug resistance continues to be problematic. One approach to deal with the challenge of resistance entails extending anticancer treatments beyond targeting cancer cells by additionally altering the tumor microenvironment. Understanding how the tumor microenvironment contributes to the evolution of diverse resistance pathways could aid in the design of sequential treatments that can elicit and take advantage of a predictable resistance trajectory. Tumor-associated macrophages often support neoplastic growth and are frequently the most abundant immune cell found in tumors. Here, we used clinically relevant in vivo Braf-mutant melanoma models with fluorescent markers to track the stage-specific changes in macrophages under targeted therapy with Braf/Mek inhibitors and assessed the dynamic evolution of the macrophage population generated by therapy pressure-induced stress. During the onset of a drug-tolerant persister state, Ccr2+ monocyte-derived macrophage infiltration rose, suggesting that macrophage influx at this point could facilitate the onset of stable drug resistance that melanoma cells show after several weeks of treatment. Comparison of melanomas that develop in a Ccr2-proficient or -deficient microenvironment demonstrated that lack of melanoma infiltrating Ccr2+ macrophages delayed onset of resistance and shifted melanoma cell evolution towards unstable resistance. Unstable resistance was characterized by sensitivity to targeted therapy when factors from the microenvironment were lost. Importantly, this phenotype was reversed by coculturing melanoma cells with Ccr2+ macrophages. Overall, this study demonstrates that the development of resistance may be directed by altering the tumor microenvironment to improve treatment timing and the probability of relapse.
Significance:
Ccr2+ melanoma macrophages that are active in tumors during the drug-tolerant persister state following targeted therapy-induced regression are key contributors directing melanoma cell reprogramming toward specific therapeutic resistance trajectories.
Insights
Targeted melanoma therapy can induce drug resistance by increasing Ccr2+ macrophages. Blocking these macrophages may delay resistance, offering new treatment strategies for melanoma.
Area of Science:
- Oncology
- Immunology
- Cancer Biology
Background:
- Targeted therapies for oncogene addiction improve outcomes but face drug resistance.
- The tumor microenvironment, particularly tumor-associated macrophages, plays a role in resistance evolution.
- Understanding macrophage dynamics under therapy is crucial for overcoming resistance.
Purpose of the Study:
- To investigate the role of macrophages in melanoma drug resistance.
- To track dynamic changes in macrophages during targeted therapy.
- To assess how altering the tumor microenvironment impacts resistance trajectories.
Main Methods:
- Utilized in vivo Braf-mutant melanoma models with fluorescent markers.
- Tracked stage-specific macrophage changes under Braf/Mek inhibitor therapy.
- Compared melanoma development in Ccr2-proficient versus Ccr2-deficient microenvironments.
Main Results:
- Ccr2+ monocyte-derived macrophage infiltration increased during the drug-tolerant persister state.
- Lack of Ccr2+ macrophages delayed resistance onset and promoted unstable resistance.
- Coculturing melanoma cells with Ccr2+ macrophages reversed unstable resistance.
Conclusions:
- Ccr2+ macrophages are key drivers of melanoma cell reprogramming towards therapeutic resistance.
- Altering the tumor microenvironment, specifically macrophage infiltration, can direct resistance pathways.
- Targeting macrophages may improve treatment timing and reduce relapse probability in melanoma.

