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EGF-Like-Domain-7 Is Required for VEGF-Induced Akt/ERK Activation and Vascular Tube Formation in an Ex Vivo Angiogenesis Assay

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2014

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Public Library of Science
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Takeuchi, K., R. Yanai, F. Kumase, Y. Morizane, J. Suzuki, M. Kayama, K. Brodowska, et al. 2014. “EGF-Like-Domain-7 Is Required for VEGF-Induced Akt/ERK Activation and Vascular Tube Formation in an Ex Vivo Angiogenesis Assay.” PLoS ONE 9 (3): e91849. doi:10.1371/journal.pone.0091849. http://dx.doi.org/10.1371/journal.pone.0091849.

Abstract

EGFL7 is a secreted angiogenic factor, which in contrast to the well-known secreted angiogenic molecules VEGF and FGF-2, is almost exclusively expressed by endothelial cells and may act in an autocrine fashion. Prior studies have shown EGFL7 to mediate its angiogenic effects by interfering with the Notch pathway and/or via the intronic miR126. Less is known about its effects on VEGF signaling. We wanted to investigate the role of epidermal growth factor-like domain 7 (EGFL7) in VEGF-driven angiogenesis using an ex vivo Matrigel-embedded mouse eye cup assay and siRNA mediated knockdown of EGFL7 by siRNA. Our results suggested that VEGF-induced vascular tube formation was significantly impaired after siRNA downregulation of EGFL7. In addition, knockdown of EGFL7 suppressed VEGF upregulation of phospho-Akt and phospho-Erk(1/2) in endothelial cells, but did not alter VEGFR phosphorylation and neuropilin-1 protein expression or miR126 expression. Thus, in conclusion, EGFL7 is required for VEGF upregulation of the Akt/Erk (1/2) pathway during angiogenesis, and may represent a new therapeutic target in diseases of pathological neovascularization.

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Biology and life sciences, Anatomy, Biological Tissue, Epithelium, Epithelial Cells, Endothelial Cells, Cell biology, Signal transduction, Cell signaling, Signaling cascades, AKT signaling cascade, ERK signaling cascade, Extracellular Matrix Signaling, Membrane Receptor Signaling, Cellular Types, Molecular Cell Biology, Medicine and Health Sciences, Ophthalmology, Pathology and Laboratory Medicine, Molecular Pathology, Vascular Medicine, Vascular Diseases, Peripheral Vascular Disease, Model Organisms, Animal Models, Mouse Models

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