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Published on: April 6, 2016
Targeting EGFR and VEGF(R) pathway cross-talk in tumor survival and angiogenesis
Annette K Larsen1, Djamila Ouaret, Karima El Ouadrani
1Cancer Biology and Therapeutics, Centre de Recherche Saint-Antoine, Hôpital Saint-Antoine, Paris 75012, France. annette.larsen@upmc.fr
Abstract:
The last decade has witnessed the approval of monoclonal antibodies (mAbs) and small molecule tyrosine kinase inhibitors (TKIs) for targeting of oncogenic signaling pathways. Generally, the clinical activity of these agents has been less than expected, in part due to unsuspected feed-back loops and cross-talk between different signaling pathways, thereby suggesting the interest of inhibiting multiple pathways. The extensive degree of EGFR-VEGF(R) pathway cross-talk identifies these pathways as particularly promising for joint targeting. Activation of the EGFR pathway increases the production of tumor-derived VEGF that acts on endothelial cells in a paracrine manner to promote angiogenesis. Accordingly, exposure to EGFR inhibitors is accompanied by attenuation of VEGF expression while resistance to EGFR inhibitors is frequently associated with enhanced VEGF levels. Recent data have expanded the biological activities of the two pathways by documenting a role for VEGF signaling in tumor cell survival and demonstrating the expression of EGFR by some tumor-associated endothelial cells. At least part of these signaling events are intracrine (intracellular and autocrine) and thus not readily accessible for the mAbs which target extracellular ligands and membrane receptors. This may explain why two major clinical trials combining EGFR and VEGF-targeted mAbs gave disappointing results and suggest a need for compounds that are able to inhibit intracrine signaling. Clinical application of new combinations should be preceded by preclinical development guided by functional biomarker analysis to identify active drug combinations and to facilitate the identification of patient subgroups likely, or not, to respond to dual pathway inhibition.
Insights
Targeting both epidermal growth factor receptor (EGFR) and vascular endothelial growth factor receptor (VEGFR) pathways may improve cancer treatment. However, targeting intracrine signaling is crucial for overcoming resistance to current therapies.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Monoclonal antibodies (mAbs) and small molecule tyrosine kinase inhibitors (TKIs) target oncogenic pathways but show limited clinical activity.
- Feedback loops and cross-talk between signaling pathways contribute to unexpected treatment resistance.
- The epidermal growth factor receptor (EGFR) and vascular endothelial growth factor (VEGF) pathways exhibit significant cross-talk, making them promising targets for combination therapy.
Purpose of the Study:
- To explore the rationale for simultaneously targeting the EGFR and VEGF(R) pathways in cancer treatment.
- To investigate the role of intracrine signaling in resistance to EGFR and VEGF-targeted therapies.
- To emphasize the need for preclinical development and biomarker analysis for novel combination therapies.
Main Methods:
- Review of existing literature on EGFR and VEGF(R) signaling pathways.
- Analysis of clinical trial data for combination therapies targeting EGFR and VEGF.
- Discussion of the implications of intracrine signaling for drug development.
Main Results:
- EGFR pathway activation stimulates VEGF production, promoting angiogenesis.
- Resistance to EGFR inhibitors is often associated with increased VEGF levels.
- Intracrine signaling mediated by EGFR and VEGF is not effectively targeted by extracellular mAbs, potentially explaining disappointing clinical trial results.
Conclusions:
- Combined inhibition of EGFR and VEGF(R) pathways holds promise, but current mAbs are limited by intracrine signaling.
- Development of novel compounds targeting intracrine signaling is necessary.
- Preclinical studies with functional biomarker analysis are essential to guide clinical application and patient selection for dual pathway inhibition.
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