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Published on: November 28, 2019
Invasive margin tissue-resident macrophages of high CD163 expression impede responses to T cell-based immunotherapy
Marit J van Elsas1, Camilla Labrie1, Anders Etzerodt2
1Department of Medical Oncology, Oncode Institute, Leiden University Medical Center, Leiden, The Netherlands.
Background:
Primary and secondary resistance is a major hurdle in cancer immunotherapy. Therefore, a better understanding of the underlying mechanisms involved in immunotherapy resistance is of pivotal importance to improve therapy outcome.
Method:
Here, two mouse models with resistance against therapeutic vaccine-induced tumor regression were studied. Exploration of the tumor microenvironment by high dimensional flow cytometry in combination with therapeutic in vivo settings allowed for the identification of immunological factors driving immunotherapy resistance.
Results:
Comparison of the tumor immune infiltrate during early and late regression revealed a change from tumor-rejecting toward tumor-promoting macrophages. In concert, a rapid exhaustion of tumor-infiltrating T cells was observed. Perturbation studies identified a small but discernible CD163hi macrophage population, with high expression of several tumor-promoting macrophage markers and a functional anti-inflammatory transcriptome profile, but not other macrophages, to be responsible. In-depth analyses revealed that they localize at the tumor invasive margins and are more resistant to Csf1r inhibition when compared with other macrophages. In vivo studies validated the activity of heme oxygenase-1 as an underlying mechanism of immunotherapy resistance. The transcriptomic profile of CD163hi macrophages is highly similar to a human monocyte/macrophage population, indicating that they represent a target to improve immunotherapy efficacy.
Conclusions:
In this study, a small population of CD163hi tissue-resident macrophages is identified to be responsible for primary and secondary resistance against T-cell-based immunotherapies. While these CD163hi M2 macrophages are resistant to Csf1r-targeted therapies, in-depth characterization and identification of the underlying mechanisms driving immunotherapy resistance allows the specific targeting of this subset of macrophages, thereby creating new opportunities for therapeutic intervention with the aim to overcome immunotherapy resistance.
Insights
A specific CD163-high macrophage population drives resistance to cancer immunotherapy. Targeting these macrophages offers a new strategy to improve treatment efficacy against various cancers.
Area of Science:
- Immunology
- Oncology
- Cancer Research
Background:
- Cancer immunotherapy faces significant challenges due to primary and secondary resistance.
- Understanding the mechanisms of immunotherapy resistance is crucial for improving patient outcomes.
Purpose of the Study:
- To identify immunological factors contributing to resistance against therapeutic vaccine-induced tumor regression in mouse models.
- To elucidate the role of specific macrophage populations in mediating immunotherapy resistance.
Main Methods:
- Utilized high-dimensional flow cytometry to analyze the tumor microenvironment in mouse models of immunotherapy resistance.
- Conducted perturbation studies and transcriptomic analyses to identify key cellular players and mechanisms.
- Investigated the role of heme oxygenase-1 and Csf1r inhibition in macrophage-mediated resistance.
Main Results:
- A shift from tumor-rejecting to tumor-promoting macrophages was observed during late-stage tumor regression.
- Tumor-infiltrating T cells exhibited rapid exhaustion.
- A distinct CD163-high macrophage subset was identified as responsible for immunotherapy resistance, exhibiting resistance to Csf1r inhibition and expressing heme oxygenase-1.
Conclusions:
- A specific population of CD163-high tissue-resident macrophages mediates primary and secondary resistance to T-cell-based immunotherapies.
- These macrophages are resistant to Csf1r-targeted therapies, but their unique characteristics present a target for overcoming immunotherapy resistance.
- Targeting this macrophage subset offers novel therapeutic opportunities to enhance cancer immunotherapy efficacy.
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