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Updated: May 27, 2026

Isolation and Characterization of Neutrophils with Anti-Tumor Properties
Published on: June 19, 2015
Tumor-derived G-CSF facilitates neoplastic growth through a granulocytic myeloid-derived suppressor cell-dependent
Jeremy D Waight1, Qiang Hu, Austin Miller
1Department of Immunology, Roswell Park Cancer Institute, Buffalo, New York, United States of America.
Abstract:
Myeloid-derived suppressor cells (MDSC) are induced under diverse pathologic conditions, including neoplasia, and suppress innate and adaptive immunity. While the mechanisms by which MDSC mediate immunosuppression are well-characterized, details on how they develop remain less understood. This is complicated further by the fact that MDSC comprise multiple myeloid cell types, namely monocytes and granulocytes, reflecting diverse stages of differentiation and the proportion of these subpopulations vary among different neoplastic models. Thus, it is thought that the type and quantities of inflammatory mediators generated during neoplasia dictate the composition of the resultant MDSC response. Although much interest has been devoted to monocytic MDSC biology, a fundamental gap remains in our understanding of the derivation of granulocytic MDSC. In settings of heightened granulocytic MDSC responses, we hypothesized that inappropriate production of G-CSF is a key initiator of granulocytic MDSC accumulation. We observed abundant amounts of G-CSF in vivo, which correlated with robust granulocytic MDSC responses in multiple tumor models. Using G-CSF loss- and gain-of-function approaches, we demonstrated for the first time that: 1) abrogating G-CSF production significantly diminished granulocytic MDSC accumulation and tumor growth; 2) ectopically over-expressing G-CSF in G-CSF-negative tumors significantly augmented granulocytic MDSC accumulation and tumor growth; and 3) treatment of naïve healthy mice with recombinant G-CSF protein elicited granulocytic-like MDSC remarkably similar to those induced under tumor-bearing conditions. Collectively, we demonstrated that tumor-derived G-CSF enhances tumor growth through granulocytic MDSC-dependent mechanisms. These findings provide us with novel insights into MDSC subset development and potentially new biomarkers or targets for cancer therapy.
Insights
Tumor-produced G-CSF drives the accumulation of granulocytic myeloid-derived suppressor cells (MDSC), promoting tumor growth. Targeting G-CSF may offer new cancer therapy strategies by modulating MDSC responses.
Area of Science:
- Immunology
- Cancer Biology
- Cellular Biology
Background:
- Myeloid-derived suppressor cells (MDSC) are key regulators of immune suppression in cancer.
- While monocytic MDSC are well-studied, the development of granulocytic MDSC remains poorly understood.
- Tumor-associated inflammatory mediators are thought to influence MDSC subset composition.
Purpose of the Study:
- To investigate the role of granulocyte colony-stimulating factor (G-CSF) in the development of granulocytic MDSC.
- To determine if G-CSF is a key initiator of granulocytic MDSC accumulation in tumors.
- To explore the therapeutic potential of targeting G-CSF in cancer treatment.
Main Methods:
- Utilized G-CSF loss- and gain-of-function models in multiple tumor-bearing mice.
- Quantified G-CSF levels in vivo and correlated them with granulocytic MDSC populations.
- Administered recombinant G-CSF protein to healthy mice to assess its effect on MDSC induction.
Main Results:
- Elevated G-CSF levels were observed in tumors, correlating with increased granulocytic MDSC.
- Abrogating G-CSF production significantly reduced granulocytic MDSC accumulation and tumor growth.
- Ectopic G-CSF expression in tumors augmented granulocytic MDSC and tumor growth.
- Recombinant G-CSF treatment induced granulocytic-like MDSC in healthy mice.
Conclusions:
- Tumor-derived G-CSF is a critical driver of granulocytic MDSC accumulation and subsequent tumor growth.
- G-CSF promotes tumor progression via granulocytic MDSC-dependent mechanisms.
- G-CSF represents a potential therapeutic target and biomarker for cancer therapy.
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