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Laminin Promotes Vascular Network Formation in 3D in Vitro Collagen Scaffolds by Regulating VEGF Uptake

Overview
Journal Exp Cell Res
Specialty Cell Biology
Date 2014 Jun 8
PMID 24907654
Citations 35
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Abstract

Angiogenesis is an essential neovascularisation process, which if recapitulated in 3D in vitro, will provide better understanding of endothelial cell (EC) behaviour. Various cell types and growth factors are involved, with vascular endothelial growth factor (VEGF) and its receptors VEGFR1 and VEGFR2 key components. We were able to control the aggregation pattern of ECs in 3D collagen hydrogels, by varying the matrix composition and/or having a source of cells signalling angiogenic proteins. These aggregation patterns reflect the different developmental pathways that ECs take to form different sized tubular structures. Cultures with added laminin and thus increased expression of α6 integrin showed a significant increase (p<0.05) in VEGFR2 positive ECs and increased VEGF uptake. This resulted in the end-to-end network aggregation of ECs. In cultures without laminin and therefore low α6 integrin expression, VEGFR2 levels and VEGF uptake were significantly lower (p<0.05). These ECs formed contiguous sheets, analogous to the 'wrapping' pathway in development. We have identified a key linkage between integrin expression on ECs and their uptake of VEGF, regulated by VEGFR2, resulting in different aggregation patterns in 3D.

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References
1.
Scott A, Mellor H . VEGF receptor trafficking in angiogenesis. Biochem Soc Trans. 2009; 37(Pt 6):1184-8. DOI: 10.1042/BST0371184. View

2.
Davis G, Camarillo C . An alpha 2 beta 1 integrin-dependent pinocytic mechanism involving intracellular vacuole formation and coalescence regulates capillary lumen and tube formation in three-dimensional collagen matrix. Exp Cell Res. 1996; 224(1):39-51. DOI: 10.1006/excr.1996.0109. View

3.
Nakayama M, Nakayama A, van Lessen M, Yamamoto H, Hoffmann S, Drexler H . Spatial regulation of VEGF receptor endocytosis in angiogenesis. Nat Cell Biol. 2013; 15(3):249-60. PMC: 3901019. DOI: 10.1038/ncb2679. View

4.
Koch S, Tugues S, Li X, Gualandi L, Claesson-Welsh L . Signal transduction by vascular endothelial growth factor receptors. Biochem J. 2011; 437(2):169-83. DOI: 10.1042/BJ20110301. View

5.
Arnaoutova I, Kleinman H . In vitro angiogenesis: endothelial cell tube formation on gelled basement membrane extract. Nat Protoc. 2010; 5(4):628-35. DOI: 10.1038/nprot.2010.6. View