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Published on: December 21, 2014
Tumor VEGF:VEGFR2 autocrine feed-forward loop triggers angiogenesis in lung cancer
Sampurna Chatterjee1, Lukas C Heukamp, Maike Siobal
1Max Planck Institute for Neurological Research, with Klaus-Joachim-Zülch Laboratories of the Max Planck Society and the Medical Faculty of the University of Cologne, Cologne, Germany.
Abstract:
The molecular mechanisms that control the balance between antiangiogenic and proangiogenic factors and initiate the angiogenic switch in tumors remain poorly defined. By combining chemical genetics with multimodal imaging, we have identified an autocrine feed-forward loop in tumor cells in which tumor-derived VEGF stimulates VEGF production via VEGFR2-dependent activation of mTOR, substantially amplifying the initial proangiogenic signal. Disruption of this feed-forward loop by chemical perturbation or knockdown of VEGFR2 in tumor cells dramatically inhibited production of VEGF in vitro and in vivo. This disruption was sufficient to prevent tumor growth in vivo. In patients with lung cancer, we found that this VEGF:VEGFR2 feed-forward loop was active, as the level of VEGF/VEGFR2 binding in tumor cells was highly correlated to tumor angiogenesis. We further demonstrated that inhibition of tumor cell VEGFR2 induces feedback activation of the IRS/MAPK signaling cascade. Most strikingly, combined pharmacological inhibition of VEGFR2 (ZD6474) and MEK (PD0325901) in tumor cells resulted in dramatic tumor shrinkage, whereas monotherapy only modestly slowed tumor growth. Thus, a tumor cell-autonomous VEGF:VEGFR2 feed-forward loop provides signal amplification required for the establishment of fully angiogenic tumors in lung cancer. Interrupting this feed-forward loop switches tumor cells from an angiogenic to a proliferative phenotype that sensitizes tumor cells to MAPK inhibition.
Insights
Tumor cells amplify growth signals through a VEGF:VEGFR2 feed-forward loop. Inhibiting this loop and MEK dramatically shrinks lung tumors, offering a new therapeutic strategy.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Research
Background:
- The mechanisms driving tumor angiogenesis remain incompletely understood.
- Identifying factors that control the balance between antiangiogenic and proangiogenic signals is crucial for cancer therapy.
Purpose of the Study:
- To elucidate the molecular mechanisms behind the angiogenic switch in tumors.
- To investigate a potential autocrine feed-forward loop involving VEGF and VEGFR2 in tumor cells.
Main Methods:
- Utilized chemical genetics and multimodal imaging to study tumor cell signaling.
- Employed in vitro and in vivo models, including lung cancer patient samples.
- Investigated the effects of inhibiting VEGFR2 and MEK signaling pathways.
Main Results:
- Identified a tumor cell-autonomous VEGF:VEGFR2 feed-forward loop that amplifies proangiogenic signals via mTOR.
- Disruption of this loop inhibited VEGF production and tumor growth.
- Combined VEGFR2 and MEK inhibition led to significant tumor shrinkage in lung cancer models.
Conclusions:
- A tumor cell-specific VEGF:VEGFR2 feed-forward loop is essential for tumor angiogenesis in lung cancer.
- Targeting this loop switches tumors from an angiogenic to a proliferative state, enhancing sensitivity to MAPK inhibitors.
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