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Published on: November 28, 2019
Tumor-derived GCSF Alters Tumor and Systemic Immune System Cell Subset Composition and Signaling
Israel Matos1, Maunish Barvalia1, Manreet K Chehal1
1Department of Microbiology and Immunology, University of British Columbia, Life Sciences Institute, Vancouver, British Columbia, Canada.
Abstract:
While immunotherapies such as immune checkpoint blockade and adoptive T-cell therapy improve survival for a subset of human malignancies, many patients fail to respond. Phagocytes including dendritic cells (DC), monocytes, and macrophages (MF) orchestrate innate and adaptive immune responses against tumors. However, tumor-derived factors may limit immunotherapy effectiveness by altering phagocyte signal transduction, development, and activity. Using Cytometry by Time-of-Flight, we found that tumor-derived GCSF altered myeloid cell distribution both locally and systemically. We distinguished a large number of GCSF-induced immune cell subset and signal transduction pathway perturbations in tumor-bearing mice, including a prominent increase in immature neutrophil/myeloid-derived suppressor cell (Neut/MDSC) subsets and tumor-resident PD-L1+ Neut/MDSCs. GCSF expression was also linked to distinct tumor-associated MF populations, decreased conventional DCs, and splenomegaly characterized by increased splenic progenitors with diminished DC differentiation potential. GCSF-dependent dysregulation of DC development was recapitulated in bone marrow cultures in vitro, using medium derived from GCSF-expressing tumor cell cultures. Importantly, tumor-derived GCSF impaired T-cell adoptive cell therapy effectiveness and was associated with increased tumor volume and diminished survival of mice with mammary cancer. Treatment with neutralizing anti-GCSF antibodies reduced colonic and circulatory Neut/MDSCs, normalized colonic immune cell composition and diminished tumor burden in a spontaneous model of mouse colon cancer. Analysis of human colorectal cancer patient gene expression data revealed a significant correlation between survival and low GCSF and Neut/MDSC gene expression. Our data suggest that normalizing GCSF bioactivity may improve immunotherapy in cancers associated with GCSF overexpression.
Significance:
Tumor-derived GCSF leads to systemic immune population changes. GCSF blockade restores immune populations, improves immunotherapy, and reduces tumor size, paralleling human colorectal cancer data. GCSF inhibition may synergize with current immunotherapies to treat GCSF-secreting tumors.
Insights
Tumor-derived G-CSF disrupts immune cells, hindering immunotherapy. Blocking G-CSF restores immune balance, enhances cancer therapy, and reduces tumor growth, offering a potential synergistic approach for G-CSF-secreting tumors.
Area of Science:
- Immunology
- Cancer Biology
- Oncology
Background:
- Immunotherapies like checkpoint blockade and T-cell therapy show promise but have limited response rates.
- Tumor-derived factors can impair phagocyte function, compromising anti-tumor immunity.
- Granulocyte-colony stimulating factor (G-CSF) is implicated in altering immune cell dynamics within the tumor microenvironment.
Purpose of the Study:
- To investigate the impact of tumor-derived G-CSF on myeloid cell populations and immunotherapy efficacy.
- To determine if G-CSF blockade can restore anti-tumor immunity and improve treatment outcomes.
- To correlate G-CSF and myeloid-derived suppressor cell (MDSC) levels with patient survival in colorectal cancer.
Main Methods:
- Utilized Cytometry by Time-of-Flight (CTOF) to analyze immune cell subsets in tumor-bearing mice.
- Performed in vitro bone marrow cultures with G-CSF-conditioned media.
- Administered anti-G-CSF neutralizing antibodies in spontaneous mouse cancer models.
- Analyzed human colorectal cancer patient gene expression data.
Main Results:
- Tumor-derived G-CSF induced significant myeloid cell perturbations, including increased immature neutrophils/myeloid-derived suppressor cells (Neut/MDSCs) and altered dendritic cell (DC) development.
- G-CSF impaired T-cell adoptive cell therapy efficacy, increased tumor volume, and reduced survival in mice.
- Anti-G-CSF antibody treatment reduced Neut/MDSCs, normalized immune cell composition, and diminished tumor burden.
- Human data showed a correlation between low G-CSF/Neut/MDSC gene expression and improved survival.
Conclusions:
- Tumor-derived G-CSF dysregulates myeloid cell populations and suppresses anti-tumor immunity, negatively impacting immunotherapy effectiveness.
- G-CSF blockade represents a promising strategy to restore immune homeostasis and enhance cancer immunotherapy.
- Targeting G-CSF may synergize with existing immunotherapies for cancers overexpressing this cytokine.
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