Cargando…

An anisotropic three-dimensional electrospun micro/nanofibrous hybrid PLA/PCL scaffold

Although the electrospinning method has been developed to prepare nanofibrous scaffolds, their isotropic structure, low porosity and small pore size prevents them from wide application, especially for anisotropic tissues. In this study, a modified electrospinning receiving system with a rotating man...

Descripción completa

Detalles Bibliográficos
Autores principales: Dong, Xufeng, Zhang, Jingying, Pang, Lu, Chen, Junting, Qi, Min, You, Shijie, Ren, Nanqi
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/PMC9062165/
https://www.ncbi.nlm.nih.gov/pubmed/35520749
http://dx.doi.org/10.1039/c9ra00846b
_version_ 1784698873625706496
author Dong, Xufeng
Zhang, Jingying
Pang, Lu
Chen, Junting
Qi, Min
You, Shijie
Ren, Nanqi
author_facet Dong, Xufeng
Zhang, Jingying
Pang, Lu
Chen, Junting
Qi, Min
You, Shijie
Ren, Nanqi
author_sort Dong, Xufeng
collection PubMed
description Although the electrospinning method has been developed to prepare nanofibrous scaffolds, their isotropic structure, low porosity and small pore size prevents them from wide application, especially for anisotropic tissues. In this study, a modified electrospinning receiving system with a rotating mandrel and a water bath is developed. Compared with the nanofibrous scaffold prepared by the common electrospinning system, the micro/nanofibrous polylactide/polycaprolactone (PLA/PCL) hybrid scaffold obtained with the modified system presents anisotropic structure, promotes porosity and enlarged pore size. The hybrid scaffold consists of oriented microfibers and random nanofibers. SEM images demonstrate its anisotropic 3D structure. Tensile testing results confirm that the hybrid scaffold has anisotropic mechanical properties. Compared with the nanofibrous scaffold, human osteoblast-like MG-63 cells protrude more on the surface of the hybrid scaffold. Actin fluorescence staining confirms that the cells form more actin filaments inside the hybrid scaffold. HE staining indicates that more cells enter the interior of the micro/nanofibrous hybrid scaffold. The CCK-8 activity test shows an enhanced proliferation activity of cells on the surface of the hybrid scaffold. In conclusion, the novel micro/nanofibrous hybrid scaffold has an anisotropic structure and better biocompatibility than common nanofibrous scaffolds, indicating a promising future for use in anisotropic tissue engineering.
format Online
Article
Text
id pubmed-9062165
institution National Center for Biotechnology Information
language English
publishDate 2019
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90621652022-05-04 An anisotropic three-dimensional electrospun micro/nanofibrous hybrid PLA/PCL scaffold Dong, Xufeng Zhang, Jingying Pang, Lu Chen, Junting Qi, Min You, Shijie Ren, Nanqi RSC Adv Chemistry Although the electrospinning method has been developed to prepare nanofibrous scaffolds, their isotropic structure, low porosity and small pore size prevents them from wide application, especially for anisotropic tissues. In this study, a modified electrospinning receiving system with a rotating mandrel and a water bath is developed. Compared with the nanofibrous scaffold prepared by the common electrospinning system, the micro/nanofibrous polylactide/polycaprolactone (PLA/PCL) hybrid scaffold obtained with the modified system presents anisotropic structure, promotes porosity and enlarged pore size. The hybrid scaffold consists of oriented microfibers and random nanofibers. SEM images demonstrate its anisotropic 3D structure. Tensile testing results confirm that the hybrid scaffold has anisotropic mechanical properties. Compared with the nanofibrous scaffold, human osteoblast-like MG-63 cells protrude more on the surface of the hybrid scaffold. Actin fluorescence staining confirms that the cells form more actin filaments inside the hybrid scaffold. HE staining indicates that more cells enter the interior of the micro/nanofibrous hybrid scaffold. The CCK-8 activity test shows an enhanced proliferation activity of cells on the surface of the hybrid scaffold. In conclusion, the novel micro/nanofibrous hybrid scaffold has an anisotropic structure and better biocompatibility than common nanofibrous scaffolds, indicating a promising future for use in anisotropic tissue engineering. The Royal Society of Chemistry 2019-03-28 /pmc/articles/PMC9062165/ /pubmed/35520749 http://dx.doi.org/10.1039/c9ra00846b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Dong, Xufeng
Zhang, Jingying
Pang, Lu
Chen, Junting
Qi, Min
You, Shijie
Ren, Nanqi
An anisotropic three-dimensional electrospun micro/nanofibrous hybrid PLA/PCL scaffold
title An anisotropic three-dimensional electrospun micro/nanofibrous hybrid PLA/PCL scaffold
title_full An anisotropic three-dimensional electrospun micro/nanofibrous hybrid PLA/PCL scaffold
title_fullStr An anisotropic three-dimensional electrospun micro/nanofibrous hybrid PLA/PCL scaffold
title_full_unstemmed An anisotropic three-dimensional electrospun micro/nanofibrous hybrid PLA/PCL scaffold
title_short An anisotropic three-dimensional electrospun micro/nanofibrous hybrid PLA/PCL scaffold
title_sort anisotropic three-dimensional electrospun micro/nanofibrous hybrid pla/pcl scaffold
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9062165/
https://www.ncbi.nlm.nih.gov/pubmed/35520749
http://dx.doi.org/10.1039/c9ra00846b
work_keys_str_mv AT dongxufeng ananisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT zhangjingying ananisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT panglu ananisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT chenjunting ananisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT qimin ananisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT youshijie ananisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT rennanqi ananisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT dongxufeng anisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT zhangjingying anisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT panglu anisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT chenjunting anisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT qimin anisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT youshijie anisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold
AT rennanqi anisotropicthreedimensionalelectrospunmicronanofibroushybridplapclscaffold