Biomimetic hydrogels based on natural dextran and gelatin for vascular tissue engineering application

Hydrogels are crosslinked polymer networks with high water content. They have the capability to mimic native ECM and thus are highly desirable as 3D scaffolds for cell encapsulation. Synthetic hydrogels for cell encapsulation have hitherto been based on poly(ethylene glycol), which is non-natural, n...

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Main Author: Liu, YunXiao
Other Authors: Chan Bee Eng, Mary
Format: Theses and Dissertations
Language:English
Published: 2010
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Online Access:https://hdl.handle.net/10356/40817
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-408172023-03-03T16:06:49Z Biomimetic hydrogels based on natural dextran and gelatin for vascular tissue engineering application Liu, YunXiao Chan Bee Eng, Mary School of Chemical and Biomedical Engineering DRNTU::Science::Medicine::Tissue engineering Hydrogels are crosslinked polymer networks with high water content. They have the capability to mimic native ECM and thus are highly desirable as 3D scaffolds for cell encapsulation. Synthetic hydrogels for cell encapsulation have hitherto been based on poly(ethylene glycol), which is non-natural, non-biodegradable, and only terminal-functionalizable. Dextran is highly hydrophilic but also biodegradable and pendant-functionalizable. More importantly, it resembles the native glycosaminoglycans. This study aims to fabricate hydrogels based on natural dextran and gelatin, which could promote 3D SMC spreading and proliferation. Two series of hydrogels were fabricated. The first hydrogel series is based on the interpenetrating polymer network (IPN) of gelatin and dextran bifunctionalized with methacrylate (MA) and aldehyde (AD) (Dex-MA-AD). These IPN hydrogels not only supported endothelial cell (EC) adhesion and spreading on the surface, but also allowed encapsulated SMCs to proliferate and spread in the bulk interior of the hydrogel; however, the Schiff base reaction was not easily controllable and while SMC spreading within the hydrogel did occur, it was rather limited. DOCTOR OF PHILOSOPHY (SCBE) 2010-06-22T06:20:10Z 2010-06-22T06:20:10Z 2010 2010 Thesis Liu, Y. X. (2010). Biomimetic hydrogels based on natural dextran and gelatin for vascular tissue engineering application. Doctoral thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/40817 10.32657/10356/40817 en 245 p. application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic DRNTU::Science::Medicine::Tissue engineering
spellingShingle DRNTU::Science::Medicine::Tissue engineering
Liu, YunXiao
Biomimetic hydrogels based on natural dextran and gelatin for vascular tissue engineering application
description Hydrogels are crosslinked polymer networks with high water content. They have the capability to mimic native ECM and thus are highly desirable as 3D scaffolds for cell encapsulation. Synthetic hydrogels for cell encapsulation have hitherto been based on poly(ethylene glycol), which is non-natural, non-biodegradable, and only terminal-functionalizable. Dextran is highly hydrophilic but also biodegradable and pendant-functionalizable. More importantly, it resembles the native glycosaminoglycans. This study aims to fabricate hydrogels based on natural dextran and gelatin, which could promote 3D SMC spreading and proliferation. Two series of hydrogels were fabricated. The first hydrogel series is based on the interpenetrating polymer network (IPN) of gelatin and dextran bifunctionalized with methacrylate (MA) and aldehyde (AD) (Dex-MA-AD). These IPN hydrogels not only supported endothelial cell (EC) adhesion and spreading on the surface, but also allowed encapsulated SMCs to proliferate and spread in the bulk interior of the hydrogel; however, the Schiff base reaction was not easily controllable and while SMC spreading within the hydrogel did occur, it was rather limited.
author2 Chan Bee Eng, Mary
author_facet Chan Bee Eng, Mary
Liu, YunXiao
format Theses and Dissertations
author Liu, YunXiao
author_sort Liu, YunXiao
title Biomimetic hydrogels based on natural dextran and gelatin for vascular tissue engineering application
title_short Biomimetic hydrogels based on natural dextran and gelatin for vascular tissue engineering application
title_full Biomimetic hydrogels based on natural dextran and gelatin for vascular tissue engineering application
title_fullStr Biomimetic hydrogels based on natural dextran and gelatin for vascular tissue engineering application
title_full_unstemmed Biomimetic hydrogels based on natural dextran and gelatin for vascular tissue engineering application
title_sort biomimetic hydrogels based on natural dextran and gelatin for vascular tissue engineering application
publishDate 2010
url https://hdl.handle.net/10356/40817
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