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Bioartificial Matrices for Therapeutic Vascularization

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Specialty Science
Date 2010 Jan 19
PMID 20080569
Citations 115
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Abstract

Therapeutic vascularization remains a significant challenge in regenerative medicine applications. Whether the goal is to induce vascular growth in ischemic tissue or scale up tissue-engineered constructs, the ability to induce the growth of patent, stable vasculature is a critical obstacle. We engineered polyethylene glycol-based bioartificial hydrogel matrices presenting protease-degradable sites, cell-adhesion motifs, and growth factors to induce the growth of vasculature in vivo. Compared to injection of soluble VEGF, these matrices delivered sustained in vivo levels of VEGF over 2 weeks as the matrix degraded. When implanted subcutaneously in rats, degradable constructs containing VEGF and arginine-glycine-aspartic acid tripeptide induced a significant number of vessels to grow into the implant at 2 weeks with increasing vessel density at 4 weeks. The mechanism of enhanced vascularization is likely cell-demanded release of VEGF, as the hydrogels may degrade substantially within 2 weeks. In a mouse model of hind-limb ischemia, delivery of these matrices resulted in significantly increased rate of reperfusion. These results support the application of engineered bioartificial matrices to promote vascularization for directed regenerative therapies.

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References
1.
Hahn M, Taite L, Moon J, Rowland M, Ruffino K, West J . Photolithographic patterning of polyethylene glycol hydrogels. Biomaterials. 2005; 27(12):2519-24. DOI: 10.1016/j.biomaterials.2005.11.045. View

2.
van Weel V, van Tongeren R, van Hinsbergh V, van Bockel J, Quax P . Vascular growth in ischemic limbs: a review of mechanisms and possible therapeutic stimulation. Ann Vasc Surg. 2008; 22(4):582-97. DOI: 10.1016/j.avsg.2008.02.017. View

3.
Moon J, Lee S, West J . Synthetic biomimetic hydrogels incorporated with ephrin-A1 for therapeutic angiogenesis. Biomacromolecules. 2007; 8(1):42-9. DOI: 10.1021/bm060452p. View

4.
Lutolf M, Hubbell J . Synthetic biomaterials as instructive extracellular microenvironments for morphogenesis in tissue engineering. Nat Biotechnol. 2005; 23(1):47-55. DOI: 10.1038/nbt1055. View

5.
Lee S, Miller J, Moon J, West J . Proteolytically degradable hydrogels with a fluorogenic substrate for studies of cellular proteolytic activity and migration. Biotechnol Prog. 2005; 21(6):1736-41. DOI: 10.1021/bp0502429. View