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Wet-spinning fabrication of shear-patterned alginate hydrogel microfibers and the guidance of cell alignment

Native tissue is naturally comprised of highly-ordered cell-matrix assemblies in a multi-hierarchical way, and the nano/submicron alignment of fibrous matrix is found to be significant in supporting cellular functionalization. In this study, a self-designed wet-spinning device appended with a rotary...

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Autores principales: Yang, You, Sun, Jing, Liu, Xiaolu, Guo, Zhenzhen, He, Yunhu, Wei, Dan, Zhong, Meiling, Guo, Likun, Fan, Hongsong, Zhang, Xingdong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5633694/
https://www.ncbi.nlm.nih.gov/pubmed/29026644
http://dx.doi.org/10.1093/rb/rbx017
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author Yang, You
Sun, Jing
Liu, Xiaolu
Guo, Zhenzhen
He, Yunhu
Wei, Dan
Zhong, Meiling
Guo, Likun
Fan, Hongsong
Zhang, Xingdong
author_facet Yang, You
Sun, Jing
Liu, Xiaolu
Guo, Zhenzhen
He, Yunhu
Wei, Dan
Zhong, Meiling
Guo, Likun
Fan, Hongsong
Zhang, Xingdong
author_sort Yang, You
collection PubMed
description Native tissue is naturally comprised of highly-ordered cell-matrix assemblies in a multi-hierarchical way, and the nano/submicron alignment of fibrous matrix is found to be significant in supporting cellular functionalization. In this study, a self-designed wet-spinning device appended with a rotary receiving pool was used to continuously produce shear-patterned hydrogel microfibers with aligned submicron topography. The process that the flow-induced shear force reshapes the surface of hydrogel fiber into aligned submicron topography was systematically analysed. Afterwards, the effect of fiber topography on cellular longitudinal spread and elongation was investigated by culturing rat neuron-like PC12 cells and human osteosarcoma MG63 cells with the spun hydrogel microfibers, respectively. The results suggested that the stronger shear flow force would lead to more distinct aligned submicron topography on fiber surface, which could induce cell orientation along with fiber axis and therefore form the cell-matrix dual-alignment. Finally, a multi-hierarchical tissue-like structure constructed by dual-oriented cell-matrix assemblies was fabricated based on this wet-spinning method. This work is believed to be a potentially novel biofabrication scheme for bottom-up constructing of engineered linear tissue, such as nerve bundle, cortical bone, muscle and hepatic cord.
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spelling pubmed-56336942017-10-12 Wet-spinning fabrication of shear-patterned alginate hydrogel microfibers and the guidance of cell alignment Yang, You Sun, Jing Liu, Xiaolu Guo, Zhenzhen He, Yunhu Wei, Dan Zhong, Meiling Guo, Likun Fan, Hongsong Zhang, Xingdong Regen Biomater Research Articles Native tissue is naturally comprised of highly-ordered cell-matrix assemblies in a multi-hierarchical way, and the nano/submicron alignment of fibrous matrix is found to be significant in supporting cellular functionalization. In this study, a self-designed wet-spinning device appended with a rotary receiving pool was used to continuously produce shear-patterned hydrogel microfibers with aligned submicron topography. The process that the flow-induced shear force reshapes the surface of hydrogel fiber into aligned submicron topography was systematically analysed. Afterwards, the effect of fiber topography on cellular longitudinal spread and elongation was investigated by culturing rat neuron-like PC12 cells and human osteosarcoma MG63 cells with the spun hydrogel microfibers, respectively. The results suggested that the stronger shear flow force would lead to more distinct aligned submicron topography on fiber surface, which could induce cell orientation along with fiber axis and therefore form the cell-matrix dual-alignment. Finally, a multi-hierarchical tissue-like structure constructed by dual-oriented cell-matrix assemblies was fabricated based on this wet-spinning method. This work is believed to be a potentially novel biofabrication scheme for bottom-up constructing of engineered linear tissue, such as nerve bundle, cortical bone, muscle and hepatic cord. Oxford University Press 2017-10 2017-06-30 /pmc/articles/PMC5633694/ /pubmed/29026644 http://dx.doi.org/10.1093/rb/rbx017 Text en © The Author(s) 2017. Published by Oxford University Press. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Yang, You
Sun, Jing
Liu, Xiaolu
Guo, Zhenzhen
He, Yunhu
Wei, Dan
Zhong, Meiling
Guo, Likun
Fan, Hongsong
Zhang, Xingdong
Wet-spinning fabrication of shear-patterned alginate hydrogel microfibers and the guidance of cell alignment
title Wet-spinning fabrication of shear-patterned alginate hydrogel microfibers and the guidance of cell alignment
title_full Wet-spinning fabrication of shear-patterned alginate hydrogel microfibers and the guidance of cell alignment
title_fullStr Wet-spinning fabrication of shear-patterned alginate hydrogel microfibers and the guidance of cell alignment
title_full_unstemmed Wet-spinning fabrication of shear-patterned alginate hydrogel microfibers and the guidance of cell alignment
title_short Wet-spinning fabrication of shear-patterned alginate hydrogel microfibers and the guidance of cell alignment
title_sort wet-spinning fabrication of shear-patterned alginate hydrogel microfibers and the guidance of cell alignment
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5633694/
https://www.ncbi.nlm.nih.gov/pubmed/29026644
http://dx.doi.org/10.1093/rb/rbx017
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