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.

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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