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Published on: December 19, 2019
Inhibition of Soluble Tumor Necrosis Factor Prevents Chemically Induced Carcinogenesis in Mice
Andrea Sobo-Vujanovic1, Lazar Vujanovic2, Albert B DeLeo3
1University of Pittsburgh Cancer Institute, Pittsburgh, Pennsylvania.
Abstract:
TNF is a potent promoter of carcinogenesis and potentially important target for cancer prevention. TNF is produced as functionally distinct transmembrane and soluble molecules (tmTNF and sTNF, respectively), but their individual roles in carcinogenesis are unexplored. We investigated the participation of tmTNF and sTNF in chemically induced carcinogenesis in mice. We found that injection of XPro1595, a dominant-negative TNF biologic (DN-TNF) and specific antagonist of sTNF, decreased tumor incidence and growth, and prolonged survival of 3-methylcholanthrene (MCA)-injected mice. Similar results were obtained following the exclusion of both TNF forms by either TNF-receptor 2-Fc fusion protein (TNFR2-Fc) treatment or TNF gene deletion. In addition, gene deletion of TNFR1, which is preferentially triggered by sTNF, was temporarily blocked, whereas gene deletion of TNFR2, which is preferentially triggered by tmTNF, enhanced MCA-induced carcinogenesis. Concomitantly with carcinogenesis induction, MCA increased circulating IL1α, accumulation of myeloid-derived suppressor cells (MDSC), STAT3 phosphorylation, and immunosuppression in the spleen. In sharp contrast, DN-TNF treatment dramatically decreased IL1α and increased the essential immunoregulatory cytokines IL1β, IL12p70, and IL17 in the peripheral blood of MCA-injected mice. In addition, MDSC accumulation, STAT3 phosphorylation, and immunosuppression in MCA-injected mice were prevented by DN-TNF treatment, TNFR2-Fc treatment, and/or gene deletion of TNF or TNFR1, but not deletion of TNFR2. These findings reveal that sTNF is both an essential promoter of carcinogenesis and a pivotal regulator of MDSCs, and indicate that sTNF could be a significant target for cancer prevention and therapy. Cancer Immunol Res; 4(5); 441-51. ©2016 AACR.
Insights
Soluble tumor necrosis factor (sTNF) drives cancer development and myeloid-derived suppressor cells. Blocking sTNF with DN-TNF inhibits carcinogenesis and enhances anti-tumor immunity, revealing sTNF as a key therapeutic target.
Area of Science:
- Immunology
- Oncology
- Cancer Research
Background:
- Tumor necrosis factor (TNF) promotes carcinogenesis.
- TNF exists as transmembrane (tmTNF) and soluble (sTNF) forms.
- Individual roles of tmTNF and sTNF in carcinogenesis are unknown.
Purpose of the Study:
- Investigate the roles of tmTNF and sTNF in chemically induced carcinogenesis.
- Determine the potential of targeting sTNF for cancer prevention and therapy.
Main Methods:
- Used 3-methylcholanthrene (MCA) to induce carcinogenesis in mice.
- Administered XPro1595 (dominant-negative TNF biologic, DN-TNF) to inhibit sTNF.
- Utilized TNF-receptor 2-Fc fusion protein (TNFR2-Fc) and TNF gene deletion.
- Assessed tumor incidence, growth, survival, immune cell populations, and cytokine profiles.
Main Results:
- DN-TNF treatment decreased tumor incidence and growth, prolonging survival.
- TNF gene deletion and TNFR2-Fc treatment yielded similar protective effects.
- Deleting TNFR1 (sTNF receptor) offered protection, while deleting TNFR2 (tmTNF receptor) enhanced carcinogenesis.
- DN-TNF treatment reduced IL1α and myeloid-derived suppressor cells (MDSCs), while increasing beneficial cytokines.
- MDSC accumulation, STAT3 phosphorylation, and immunosuppression were prevented by sTNF inhibition.
Conclusions:
- Soluble TNF (sTNF) is a critical promoter of carcinogenesis.
- sTNF plays a pivotal role in regulating MDSCs.
- Targeting sTNF represents a promising strategy for cancer prevention and therapy.
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