Cargando…

Tissue-Engineered Regeneration of Completely Transected Spinal Cord Using Induced Neural Stem Cells and Gelatin-Electrospun Poly (Lactide-Co-Glycolide)/Polyethylene Glycol Scaffolds

Tissue engineering has brought new possibilities for the treatment of spinal cord injury. Two important components for tissue engineering of the spinal cord include a suitable cell source and scaffold. In our study, we investigated induced mouse embryonic fibroblasts (MEFs) directly reprogrammed int...

Descripción completa

Detalles Bibliográficos
Autores principales: Liu, Chang, Huang, Yong, Pang, Mao, Yang, Yang, Li, Shangfu, Liu, Linshan, Shu, Tao, Zhou, Wei, Wang, Xuan, Rong, Limin, Liu, Bin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4372351/
https://www.ncbi.nlm.nih.gov/pubmed/25803031
http://dx.doi.org/10.1371/journal.pone.0117709
_version_ 1782363166456414208
author Liu, Chang
Huang, Yong
Pang, Mao
Yang, Yang
Li, Shangfu
Liu, Linshan
Shu, Tao
Zhou, Wei
Wang, Xuan
Rong, Limin
Liu, Bin
author_facet Liu, Chang
Huang, Yong
Pang, Mao
Yang, Yang
Li, Shangfu
Liu, Linshan
Shu, Tao
Zhou, Wei
Wang, Xuan
Rong, Limin
Liu, Bin
author_sort Liu, Chang
collection PubMed
description Tissue engineering has brought new possibilities for the treatment of spinal cord injury. Two important components for tissue engineering of the spinal cord include a suitable cell source and scaffold. In our study, we investigated induced mouse embryonic fibroblasts (MEFs) directly reprogrammed into neural stem cells (iNSCs), as a cell source. Three-dimensional (3D) electrospun poly (lactide-co-glycolide)/polyethylene glycol (PLGA-PEG) nanofiber scaffolds were used for iNSCs adhesion and growth. Cell growth, survival and proliferation on the scaffolds were investigated. Scanning electron microcopy (SEM) and nuclei staining were used to assess cell growth on the scaffolds. Scaffolds with iNSCs were then transplanted into transected rat spinal cords. Two or 8 weeks following transplantation, immunofluorescence was performed to determine iNSC survival and differentiation within the scaffolds. Functional recovery was assessed using the Basso, Beattie, Bresnahan (BBB) Scale. Results indicated that iNSCs showed similar morphological features with wild-type neural stem cells (wt-NSCs), and expressed a variety of neural stem cell marker genes. Furthermore, iNSCs were shown to survive, with the ability to self-renew and undergo neural differentiation into neurons and glial cells within the 3D scaffolds in vivo. The iNSC-seeded scaffolds restored the continuity of the spinal cord and reduced cavity formation. Additionally, iNSC-seeded scaffolds contributed to functional recovery of the spinal cord. Therefore, PLGA-PEG scaffolds seeded with iNSCs may serve as promising supporting transplants for repairing spinal cord injury (SCI).
format Online
Article
Text
id pubmed-4372351
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-43723512015-04-04 Tissue-Engineered Regeneration of Completely Transected Spinal Cord Using Induced Neural Stem Cells and Gelatin-Electrospun Poly (Lactide-Co-Glycolide)/Polyethylene Glycol Scaffolds Liu, Chang Huang, Yong Pang, Mao Yang, Yang Li, Shangfu Liu, Linshan Shu, Tao Zhou, Wei Wang, Xuan Rong, Limin Liu, Bin PLoS One Research Article Tissue engineering has brought new possibilities for the treatment of spinal cord injury. Two important components for tissue engineering of the spinal cord include a suitable cell source and scaffold. In our study, we investigated induced mouse embryonic fibroblasts (MEFs) directly reprogrammed into neural stem cells (iNSCs), as a cell source. Three-dimensional (3D) electrospun poly (lactide-co-glycolide)/polyethylene glycol (PLGA-PEG) nanofiber scaffolds were used for iNSCs adhesion and growth. Cell growth, survival and proliferation on the scaffolds were investigated. Scanning electron microcopy (SEM) and nuclei staining were used to assess cell growth on the scaffolds. Scaffolds with iNSCs were then transplanted into transected rat spinal cords. Two or 8 weeks following transplantation, immunofluorescence was performed to determine iNSC survival and differentiation within the scaffolds. Functional recovery was assessed using the Basso, Beattie, Bresnahan (BBB) Scale. Results indicated that iNSCs showed similar morphological features with wild-type neural stem cells (wt-NSCs), and expressed a variety of neural stem cell marker genes. Furthermore, iNSCs were shown to survive, with the ability to self-renew and undergo neural differentiation into neurons and glial cells within the 3D scaffolds in vivo. The iNSC-seeded scaffolds restored the continuity of the spinal cord and reduced cavity formation. Additionally, iNSC-seeded scaffolds contributed to functional recovery of the spinal cord. Therefore, PLGA-PEG scaffolds seeded with iNSCs may serve as promising supporting transplants for repairing spinal cord injury (SCI). Public Library of Science 2015-03-24 /pmc/articles/PMC4372351/ /pubmed/25803031 http://dx.doi.org/10.1371/journal.pone.0117709 Text en https://creativecommons.org/publicdomain/zero/1.0/ This is an open-access article distributed under the terms of the Creative Commons Public Domain declaration, which stipulates that, once placed in the public domain, this work may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose.
spellingShingle Research Article
Liu, Chang
Huang, Yong
Pang, Mao
Yang, Yang
Li, Shangfu
Liu, Linshan
Shu, Tao
Zhou, Wei
Wang, Xuan
Rong, Limin
Liu, Bin
Tissue-Engineered Regeneration of Completely Transected Spinal Cord Using Induced Neural Stem Cells and Gelatin-Electrospun Poly (Lactide-Co-Glycolide)/Polyethylene Glycol Scaffolds
title Tissue-Engineered Regeneration of Completely Transected Spinal Cord Using Induced Neural Stem Cells and Gelatin-Electrospun Poly (Lactide-Co-Glycolide)/Polyethylene Glycol Scaffolds
title_full Tissue-Engineered Regeneration of Completely Transected Spinal Cord Using Induced Neural Stem Cells and Gelatin-Electrospun Poly (Lactide-Co-Glycolide)/Polyethylene Glycol Scaffolds
title_fullStr Tissue-Engineered Regeneration of Completely Transected Spinal Cord Using Induced Neural Stem Cells and Gelatin-Electrospun Poly (Lactide-Co-Glycolide)/Polyethylene Glycol Scaffolds
title_full_unstemmed Tissue-Engineered Regeneration of Completely Transected Spinal Cord Using Induced Neural Stem Cells and Gelatin-Electrospun Poly (Lactide-Co-Glycolide)/Polyethylene Glycol Scaffolds
title_short Tissue-Engineered Regeneration of Completely Transected Spinal Cord Using Induced Neural Stem Cells and Gelatin-Electrospun Poly (Lactide-Co-Glycolide)/Polyethylene Glycol Scaffolds
title_sort tissue-engineered regeneration of completely transected spinal cord using induced neural stem cells and gelatin-electrospun poly (lactide-co-glycolide)/polyethylene glycol scaffolds
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4372351/
https://www.ncbi.nlm.nih.gov/pubmed/25803031
http://dx.doi.org/10.1371/journal.pone.0117709
work_keys_str_mv AT liuchang tissueengineeredregenerationofcompletelytransectedspinalcordusinginducedneuralstemcellsandgelatinelectrospunpolylactidecoglycolidepolyethyleneglycolscaffolds
AT huangyong tissueengineeredregenerationofcompletelytransectedspinalcordusinginducedneuralstemcellsandgelatinelectrospunpolylactidecoglycolidepolyethyleneglycolscaffolds
AT pangmao tissueengineeredregenerationofcompletelytransectedspinalcordusinginducedneuralstemcellsandgelatinelectrospunpolylactidecoglycolidepolyethyleneglycolscaffolds
AT yangyang tissueengineeredregenerationofcompletelytransectedspinalcordusinginducedneuralstemcellsandgelatinelectrospunpolylactidecoglycolidepolyethyleneglycolscaffolds
AT lishangfu tissueengineeredregenerationofcompletelytransectedspinalcordusinginducedneuralstemcellsandgelatinelectrospunpolylactidecoglycolidepolyethyleneglycolscaffolds
AT liulinshan tissueengineeredregenerationofcompletelytransectedspinalcordusinginducedneuralstemcellsandgelatinelectrospunpolylactidecoglycolidepolyethyleneglycolscaffolds
AT shutao tissueengineeredregenerationofcompletelytransectedspinalcordusinginducedneuralstemcellsandgelatinelectrospunpolylactidecoglycolidepolyethyleneglycolscaffolds
AT zhouwei tissueengineeredregenerationofcompletelytransectedspinalcordusinginducedneuralstemcellsandgelatinelectrospunpolylactidecoglycolidepolyethyleneglycolscaffolds
AT wangxuan tissueengineeredregenerationofcompletelytransectedspinalcordusinginducedneuralstemcellsandgelatinelectrospunpolylactidecoglycolidepolyethyleneglycolscaffolds
AT ronglimin tissueengineeredregenerationofcompletelytransectedspinalcordusinginducedneuralstemcellsandgelatinelectrospunpolylactidecoglycolidepolyethyleneglycolscaffolds
AT liubin tissueengineeredregenerationofcompletelytransectedspinalcordusinginducedneuralstemcellsandgelatinelectrospunpolylactidecoglycolidepolyethyleneglycolscaffolds