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Kang, Hyun-Wook
3D Biofabrication Lab.
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Biofunctionalized Electrospun Vascular Scaffolds for Enhanced Antithrombotic Properties and In Situ Endothelialization

Author(s)
Jeong, Jin-OhJu, Young MinKang, Hyun-WookAtala, AnthonyYoo, James J.Lee, Sang Jin
Issued Date
2023-11
DOI
10.1021/acsami.3c13738
URI
https://scholarworks.unist.ac.kr/handle/201301/66694
Citation
ACS APPLIED MATERIALS & INTERFACES, v.15, no.45, pp.52313 - 52323
Abstract
The development of innovative vascular substitutes has become increasingly significant due to the prevalence of vascular diseases. In this study, we designed a biofunctionalized electrospun vascular scaffold by chemically conjugating heparin molecules as an antithrombotic agent with an endothelial cell (EC)-specific antibody to promote in situ endothelialization. To optimize this biofunctionalized electrospun vascular scaffolding system, we examined various parameters, including material compositions, cross-linker concentrations, and cross-linking and conjugation processes. The findings revealed that a higher degree of heparin conjugation onto the vascular scaffold resulted in improved antithrombotic properties, as confirmed by the platelet adhesion test. Additionally, the flow chamber study demonstrated that the EC-specific antibody immobilization enhanced the scaffold's EC-capturing capability compared to a nonconjugated vascular scaffold. The optimized biofunctionalized vascular scaffolds also displayed exceptional mechanical properties, such as suture retention strength and tensile properties. Our research demonstrated that the biofunctionalized vascular scaffolds and the directed immobilization of bioactive molecules could provide the necessary elements for successful acellular vascular tissue engineering applications.
Publisher
AMER CHEMICAL SOC
ISSN
1944-8244
Keyword (Author)
vascular graftelectrospinningantithrombogenesisin situ endothelializationvascular tissue engineering
Keyword
SURFACE MODIFICATIONDRUG-DELIVERYRISK-FACTORSGRAFTSARTERYBIOMATERIALSDISEASESTENTCELLS

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