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Transdermal regulation of vascular network bioengineering using aphotopolymerizable methacrylated gelatin hydrogel
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Transdermal regulation of vascular network bioengineering using aphotopolymerizable methacrylated gelatin hydrogel

Ruei-Zeng Lin, Ying-Chieh Chen, Rafael Moreno-Luna, Ali KhademhosseiniJuan M. Melero-Martin
Biomaterials, 卷.34(28), 頁碼.6785-6796
09/2013
PMID: 23773819

摘要

Endothelial colony-forming cells Endothelial progenitor cells GelMA Hydrogel Vascular network Bioengineering Ceramics and Composites Biophysics Biomaterials Mechanics of Materials
The search for hydrogel materials compatible with vascular morphogenesis is an active area of investigation in tissue engineering. One candidate material is methacrylated gelatin (GelMA), a UV-photocrosslinkable hydrogel that is synthesized by adding methacrylate groups to the amine-containing side-groups of gelatin. GelMA hydrogels containing human endothelial colony-forming cells (ECFCs) and mesenchymal stem cells (MSCs) can be photopolymerized exvivo and then surgically transplanted invivo as a means to generate vascular networks. However, the full clinical potential of GelMA will be best captured by enabling minimally invasive implantation and in situ polymerization. In this study, we demonstrated the feasibility of bioengineering human vascular networks inside GelMA constructs that were first subcutaneously injected into immunodeficient mice while in liquid form, and then rapidly crosslinked via transdermal exposure to UV light. These bioengineered vascular networks developed within 7 days, formed functional anastomoses with the host vasculature, and were uniformly distributed throughout the constructs. Most notably, we demonstrated that the vascularization process can be directly modulated by adjusting the initial exposure time to UV light (15-45s range), with constructs displaying progressively less vascular density and smaller average lumen size as the degree of GelMA crosslinking was increased. Our studies support the use of GelMA in its injectable form, followed by in situ transdermal photopolymerization, as a preferable means to deliver cells in applications that require the formation of vascular networks invivo. © 2013 Elsevier Ltd.

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