Cargando…

A facile method for fabricating a three-dimensional aligned fibrous scaffold for vascular application

Vascular graft replacement remains the optimal treatment option for many vascular diseases despite advances in endovascular surgery. In this study, we proposed the use of surface topographical cues to align and maintain the phenotype of vascular smooth muscle cells (vSMCs) which were reported as one...

Descripción completa

Detalles Bibliográficos
Autores principales: Ng, Feng Lin, Ong, Yee Oon, Chen, Hui Zhi, Tran, Le Quan Ngoc, Cao, Ye, Tay, Bee Yen, Tan, Lay Poh
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9063778/
https://www.ncbi.nlm.nih.gov/pubmed/35520779
http://dx.doi.org/10.1039/c9ra00661c
_version_ 1784699233437220864
author Ng, Feng Lin
Ong, Yee Oon
Chen, Hui Zhi
Tran, Le Quan Ngoc
Cao, Ye
Tay, Bee Yen
Tan, Lay Poh
author_facet Ng, Feng Lin
Ong, Yee Oon
Chen, Hui Zhi
Tran, Le Quan Ngoc
Cao, Ye
Tay, Bee Yen
Tan, Lay Poh
author_sort Ng, Feng Lin
collection PubMed
description Vascular graft replacement remains the optimal treatment option for many vascular diseases despite advances in endovascular surgery. In this study, we proposed the use of surface topographical cues to align and maintain the phenotype of vascular smooth muscle cells (vSMCs) which were reported as one of the vital limitations for successful graft replacement. An auxiliary electrospinning setup has been developed to collect circumferentially aligned fibres on a 3D tubular format; this micro-architecture was found to be similar to the tunica media layer of blood vessels. The presence of aligned fibres served as a signaling modality to induce cell alignment and the maintenance of the contractile phenotype. vSMCs cultured on the 3D aligned fibrous substrate were found to exhibit better cell proliferation ability and enhanced cell-shape directionality. The functional expression of the two representative intracellular contractile proteins (i.e. α-SMA and MHC) was found to exhibit definitive markers that are orderly organized as microfilament bundles. Collectively, the result suggests a possibility of adapting the 3D aligned tubular scaffold to enhance and regulate cell function along with the additional tunability of scaffold diameter and thicknesses for tailoring to the needs of individual patients or future ex vivo studies.
format Online
Article
Text
id pubmed-9063778
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90637782022-05-04 A facile method for fabricating a three-dimensional aligned fibrous scaffold for vascular application Ng, Feng Lin Ong, Yee Oon Chen, Hui Zhi Tran, Le Quan Ngoc Cao, Ye Tay, Bee Yen Tan, Lay Poh RSC Adv Chemistry Vascular graft replacement remains the optimal treatment option for many vascular diseases despite advances in endovascular surgery. In this study, we proposed the use of surface topographical cues to align and maintain the phenotype of vascular smooth muscle cells (vSMCs) which were reported as one of the vital limitations for successful graft replacement. An auxiliary electrospinning setup has been developed to collect circumferentially aligned fibres on a 3D tubular format; this micro-architecture was found to be similar to the tunica media layer of blood vessels. The presence of aligned fibres served as a signaling modality to induce cell alignment and the maintenance of the contractile phenotype. vSMCs cultured on the 3D aligned fibrous substrate were found to exhibit better cell proliferation ability and enhanced cell-shape directionality. The functional expression of the two representative intracellular contractile proteins (i.e. α-SMA and MHC) was found to exhibit definitive markers that are orderly organized as microfilament bundles. Collectively, the result suggests a possibility of adapting the 3D aligned tubular scaffold to enhance and regulate cell function along with the additional tunability of scaffold diameter and thicknesses for tailoring to the needs of individual patients or future ex vivo studies. The Royal Society of Chemistry 2019-04-30 /pmc/articles/PMC9063778/ /pubmed/35520779 http://dx.doi.org/10.1039/c9ra00661c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Ng, Feng Lin
Ong, Yee Oon
Chen, Hui Zhi
Tran, Le Quan Ngoc
Cao, Ye
Tay, Bee Yen
Tan, Lay Poh
A facile method for fabricating a three-dimensional aligned fibrous scaffold for vascular application
title A facile method for fabricating a three-dimensional aligned fibrous scaffold for vascular application
title_full A facile method for fabricating a three-dimensional aligned fibrous scaffold for vascular application
title_fullStr A facile method for fabricating a three-dimensional aligned fibrous scaffold for vascular application
title_full_unstemmed A facile method for fabricating a three-dimensional aligned fibrous scaffold for vascular application
title_short A facile method for fabricating a three-dimensional aligned fibrous scaffold for vascular application
title_sort facile method for fabricating a three-dimensional aligned fibrous scaffold for vascular application
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9063778/
https://www.ncbi.nlm.nih.gov/pubmed/35520779
http://dx.doi.org/10.1039/c9ra00661c
work_keys_str_mv AT ngfenglin afacilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT ongyeeoon afacilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT chenhuizhi afacilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT tranlequanngoc afacilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT caoye afacilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT taybeeyen afacilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT tanlaypoh afacilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT ngfenglin facilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT ongyeeoon facilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT chenhuizhi facilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT tranlequanngoc facilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT caoye facilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT taybeeyen facilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication
AT tanlaypoh facilemethodforfabricatingathreedimensionalalignedfibrousscaffoldforvascularapplication