Poly-ε-caprolactone electrospun nanofiber mesh as a gene delivery tool
Poly-ε-caprolactone (PCL) is a biodegradable aliphatic polyester which plays critical roles in tissue engineering, such as scaffolds, drug and protein delivery vehicles. PCL nanofiber meshes fabricated by electrospinning technology have been widely used in recent decade. The objective of this study...
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doaj-5bd32b9f33f74e94be9fb0d9c57e3b1c2020-11-24T21:32:48ZengAIMS PressAIMS Bioengineering2375-14952016-12-013452853710.3934/bioeng.2016.4.528bioeng-03-00528Poly-ε-caprolactone electrospun nanofiber mesh as a gene delivery toolJianhao JiangMuhammet CeylanYi ZhengLi Yao0Ramazan Asmatulu1Shang-You YangDepartment of Biological Sciences, Wichita State University, Wichita, KS, USADepartment of Mechanical Engineering, Wichita State University, Wichita, KS, USAPoly-ε-caprolactone (PCL) is a biodegradable aliphatic polyester which plays critical roles in tissue engineering, such as scaffolds, drug and protein delivery vehicles. PCL nanofiber meshes fabricated by electrospinning technology have been widely used in recent decade. The objective of this study intends to develop a gene-tethering PCL-nanofiber mesh that can be used as a wrapping material during surgical removal of primary bone tumors, and as a gene delivery tool to provide therapeutic means for tumor recurrence. Non-viral plasmid vector encoding green fluorescent protein (eGFP) was incorporated into PCL nanofibers by electron-spinning technique to form multilayer nano-meshes. Our data demonstrated that PCL nanofiber mesh possessed benign biocompatibility in vitro. More importantly, pCMVb-GFP plasmid-linked electrospun nanofiber mesh successfully released the GFP marker gene and incorporated into the co-cultured fibroblast cells, and consequently expressed the transgene product at transcriptional and translational levels. Further investigation is warranted to characterize the therapeutic influence and long-term safety issue of the PCL nanofiber mesh as a gene delivery tool and therapeutic device in orthopedic oncology.http://www.aimspress.com/Bioengineering/article/1153/fulltext.htmlelectrospun nanofiberEGFPPCLtissue engineeringgene delivery |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Jianhao Jiang Muhammet Ceylan Yi Zheng Li Yao Ramazan Asmatulu Shang-You Yang |
spellingShingle |
Jianhao Jiang Muhammet Ceylan Yi Zheng Li Yao Ramazan Asmatulu Shang-You Yang Poly-ε-caprolactone electrospun nanofiber mesh as a gene delivery tool AIMS Bioengineering electrospun nanofiber EGFP PCL tissue engineering gene delivery |
author_facet |
Jianhao Jiang Muhammet Ceylan Yi Zheng Li Yao Ramazan Asmatulu Shang-You Yang |
author_sort |
Jianhao Jiang |
title |
Poly-ε-caprolactone electrospun nanofiber mesh as a gene delivery tool |
title_short |
Poly-ε-caprolactone electrospun nanofiber mesh as a gene delivery tool |
title_full |
Poly-ε-caprolactone electrospun nanofiber mesh as a gene delivery tool |
title_fullStr |
Poly-ε-caprolactone electrospun nanofiber mesh as a gene delivery tool |
title_full_unstemmed |
Poly-ε-caprolactone electrospun nanofiber mesh as a gene delivery tool |
title_sort |
poly-ε-caprolactone electrospun nanofiber mesh as a gene delivery tool |
publisher |
AIMS Press |
series |
AIMS Bioengineering |
issn |
2375-1495 |
publishDate |
2016-12-01 |
description |
Poly-ε-caprolactone (PCL) is a biodegradable aliphatic polyester which plays critical roles in tissue engineering, such as scaffolds, drug and protein delivery vehicles. PCL nanofiber meshes fabricated by electrospinning technology have been widely used in recent decade. The objective of this study intends to develop a gene-tethering PCL-nanofiber mesh that can be used as a wrapping material during surgical removal of primary bone tumors, and as a gene delivery tool to provide therapeutic means for tumor recurrence. Non-viral plasmid vector encoding green fluorescent protein (eGFP) was incorporated into PCL nanofibers by electron-spinning technique to form multilayer nano-meshes. Our data demonstrated that PCL nanofiber mesh possessed benign biocompatibility in vitro. More importantly, pCMVb-GFP plasmid-linked electrospun nanofiber mesh successfully released the GFP marker gene and incorporated into the co-cultured fibroblast cells, and consequently expressed the transgene product at transcriptional and translational levels. Further investigation is warranted to characterize the therapeutic influence and long-term safety issue of the PCL nanofiber mesh as a gene delivery tool and therapeutic device in orthopedic oncology. |
topic |
electrospun nanofiber EGFP PCL tissue engineering gene delivery |
url |
http://www.aimspress.com/Bioengineering/article/1153/fulltext.html |
work_keys_str_mv |
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1725955782084657152 |