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Published on: May 22, 2020
HIF activation enhances FcγRIIb expression on mononuclear phagocytes impeding tumor targeting antibody immunotherapy
Khiyam Hussain1, Rena Liu1, Rosanna C G Smith1
1Antibody and Vaccine Group, Centre for Cancer Immunology, School of Cancer Sciences, Faculty of Medicine, University of Southampton, Tremona Road, Southampton, SO16 6YD, UK.
Background:
Hypoxia is a hallmark of the tumor microenvironment (TME) and in addition to altering metabolism in cancer cells, it transforms tumor-associated stromal cells. Within the tumor stromal cell compartment, tumor-associated macrophages (TAMs) provide potent pro-tumoral support. However, TAMs can also be harnessed to destroy tumor cells by monoclonal antibody (mAb) immunotherapy, through antibody dependent cellular phagocytosis (ADCP). This is mediated via antibody-binding activating Fc gamma receptors (FcγR) and impaired by the single inhibitory FcγR, FcγRIIb.
Methods:
We applied a multi-OMIC approach coupled with in vitro functional assays and murine tumor models to assess the effects of hypoxia inducible factor (HIF) activation on mAb mediated depletion of human and murine cancer cells. For mechanistic assessments, siRNA-mediated gene silencing, Western blotting and chromatin immune precipitation were utilized to assess the impact of identified regulators on FCGR2B gene transcription.
Results:
We report that TAMs are FcγRIIbbright relative to healthy tissue counterparts and under hypoxic conditions, mononuclear phagocytes markedly upregulate FcγRIIb. This enhanced FcγRIIb expression is transcriptionally driven through HIFs and Activator protein 1 (AP-1). Importantly, this phenotype reduces the ability of macrophages to eliminate anti-CD20 monoclonal antibody (mAb) opsonized human chronic lymphocytic leukemia cells in vitro and EL4 lymphoma cells in vivo in human FcγRIIb+/+ transgenic mice. Furthermore, post-HIF activation, mAb mediated blockade of FcγRIIb can partially restore phagocytic function in human monocytes.
Conclusion:
Our findings provide a detailed molecular and cellular basis for hypoxia driven resistance to antitumor mAb immunotherapy, unveiling a hitherto unexplored aspect of the TME. These findings provide a mechanistic rationale for the modulation of FcγRIIb expression or its blockade as a promising strategy to enhance approved and novel mAb immunotherapies.
Insights
Hypoxia in tumors increases Fc gamma receptor IIb (FcγRIIb) on macrophages, hindering antibody-dependent cellular phagocytosis (ADCP) and reducing cancer immunotherapy effectiveness. Blocking FcγRIIb can restore macrophage function.
Area of Science:
- Immunology
- Cancer Biology
- Molecular Biology
Background:
- Hypoxia is a key feature of the tumor microenvironment (TME), influencing cancer cell metabolism and stromal cell function.
- Tumor-associated macrophages (TAMs) within the TME promote tumor growth but can be leveraged for cancer cell destruction via monoclonal antibody (mAb) immunotherapy through antibody-dependent cellular phagocytosis (ADCP).
- ADCP efficacy is mediated by activating Fc gamma receptors (FcγR) and inhibited by Fc gamma receptor IIb (FcγRIIb).
Purpose of the Study:
- To investigate the effects of hypoxia-inducible factor (HIF) activation on mAb-mediated cancer cell depletion.
- To elucidate the molecular mechanisms by which hypoxia impacts FcγRIIb expression and macrophage phagocytic function.
Main Methods:
- Multi-omics approach, in vitro functional assays, and murine tumor models were employed.
- siRNA-mediated gene silencing, Western blotting, and chromatin immune precipitation were used to assess FCGR2B gene transcription regulators.
- Human and murine cancer cells, along with human FcγRIIb+/+ transgenic mice, were utilized.
Main Results:
- Tumor-associated macrophages (TAMs) exhibit higher FcγRIIb expression compared to healthy tissue counterparts.
- Hypoxic conditions significantly upregulate FcγRIIb on mononuclear phagocytes, driven transcriptionally by HIFs and Activator protein 1 (AP-1).
- This FcγRIIb upregulation impairs the ability of macrophages to phagocytose antibody-opsonized cancer cells in vitro and in vivo, reducing immunotherapy efficacy. Blocking FcγRIIb partially restores phagocytic function.
Conclusions:
- Hypoxia-induced FcγRIIb upregulation in TAMs provides a molecular basis for resistance to antitumor mAb immunotherapy.
- Modulating FcγRIIb expression or blockade represents a promising strategy to enhance the effectiveness of existing and novel mAb immunotherapies.
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