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Control of the Immune Response by Pro-Angiogenic Factors

Frontiers in Oncology · 2014 · Vol. 4 · pp. 70–70
Thibault VoronElie MarcheteauSimon PernotOrianne ColussiÉric TartourJulien Taı̈ebMagali Terme

Abstract

The progressive conversion of normal cells into cancer cells is characterized by the acquisition of eight hallmarks. Among these criteria, the capability of the cancer cell to avoid the immune destruction has been noted. Thus, tumors develop mechanisms to become invisible to the immune system, such as the induction of immunosuppressive cells, which are able to inhibit the development of an efficient immune response. Molecules produced in the tumor microenvironment are involved in the occurrence of an immunosuppressive microenvironment. Recently, it has been shown that vascular endothelial growth factor A (VEGF-A) exhibits immunosuppressive properties in addition to its pro-angiogenic activities. VEGF-A can induce the accumulation of immature dendritic cells, myeloid-derived suppressor cells, regulatory T cells, and inhibit the migration of T lymphocytes to the tumor. Other pro-angiogenic factors such as placental growth factor (PlGF) could also participate in tumor-induced immunosuppression, but only few works have been performed on this point. Here, we review the impact of pro-angiogenic factors (especially VEGF-A) on immune cells. Anti-angiogenic molecules, which target VEGF-A/VEGFR axis, have been developed in the last decades and are commonly used to treat cancer patients. These drugs have anti-angiogenic properties but can also counteract the tumor-induced immunosuppression. Based on these immunomodulatory properties, anti-angiogenic molecules could be efficiently associated with immunotherapeutic strategies in preclinical models. These combinations are currently under investigation in cancer patients.

Angiogenesis and VEGF in CancerImmune cells in cancerCAR-T cell therapy researchImmune systemImmunosuppressionCancer researchTumor microenvironmentAngiogenesisMyeloid-derived Suppressor CellImmunologyCancerCancer cellVascular endothelial growth factor

Funding

  • Pfizer
  • Ligue Contre le Cancer
Citations
312
FWCI
9.54
field-weighted impact
References
110
Percentile
99%
vs. same field & year
Citations per year
Cited by
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References
Dendritic cells and the control of immunity
Nature · 1998 · 14,273 citations
Sorafenib in Advanced Hepatocellular Carcinoma
New England Journal of Medicine · 2008 · 12,835 citations
The Biology of Vascular Endothelial Growth Factor
Endocrine Reviews · 1997 · 4,356 citations
The Hallmarks of Cancer
Cell · 2000 · 28,385 citations
The immune contexture in human tumours: impact on clinical outcome
Nature reviews. Cancer · 2012 · 4,857 citations
Improved Survival with Ipilimumab in Patients with Metastatic Melanoma
New England Journal of Medicine · 2010 · 15,037 citations
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