Cargando…

A cellular spinal cord scaffold seeded with rat adipose-derived stem cells facilitates functional recovery via enhancing axon regeneration in spinal cord injured rats

Spinal cord injury (SCI), usually resulting in severe sensory and motor deficits, is a major public health concern. Adipose-derived stem cells (ADSCs), one type of adult stem cell, are free from ethical restriction, easily isolated and enriched. Therefore, ADSCs may provide a feasible cell source fo...

Descripción completa

Detalles Bibliográficos
Autores principales: Yin, Hong, Jiang, Tao, Deng, Xi, Yu, Miao, Xing, Hui, Ren, Xianjun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: D.A. Spandidos 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5783519/
https://www.ncbi.nlm.nih.gov/pubmed/29257299
http://dx.doi.org/10.3892/mmr.2017.8238
_version_ 1783295296594247680
author Yin, Hong
Jiang, Tao
Deng, Xi
Yu, Miao
Xing, Hui
Ren, Xianjun
author_facet Yin, Hong
Jiang, Tao
Deng, Xi
Yu, Miao
Xing, Hui
Ren, Xianjun
author_sort Yin, Hong
collection PubMed
description Spinal cord injury (SCI), usually resulting in severe sensory and motor deficits, is a major public health concern. Adipose-derived stem cells (ADSCs), one type of adult stem cell, are free from ethical restriction, easily isolated and enriched. Therefore, ADSCs may provide a feasible cell source for cell-based therapies in treatment of SCI. The present study successfully isolated rat ADSCs (rADSCs) from Sprague-Dawley male rats and co-cultured them with acellular spinal cord scaffolds (ASCs). Then, a rat spinal cord hemisection model was built and rats were randomly divided into 3 groups: SCI only, ASC only, and ASC + ADSCs. Furthermore, behavioral tests were conducted to evaluate functional recovery. Hematoxylin & Eosin staining and immunofluorence were carried out to assess histopathological remodeling. In addition, biotinylated dextran amines anterograde tracing was employed to visualize axon regeneration. The data demonstrated that harvested cells, which were positive for cell surface antigen cluster of differentiation (CD) 29, CD44 and CD90 and negative for CD4, detected by flow cytometry analysis, held the potential to differentiate into osteocytes and adipocytes. Rats that received transplantation of ASCs seeded with rADSCs benefited greatly in functional recovery through facilitation of histopathological rehabilitation, axon regeneration and reduction of reactive gliosis. rADSCs co-cultured with ASCs may survive and integrate into the host spinal cord on day 14 post-SCI.
format Online
Article
Text
id pubmed-5783519
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher D.A. Spandidos
record_format MEDLINE/PubMed
spelling pubmed-57835192018-02-12 A cellular spinal cord scaffold seeded with rat adipose-derived stem cells facilitates functional recovery via enhancing axon regeneration in spinal cord injured rats Yin, Hong Jiang, Tao Deng, Xi Yu, Miao Xing, Hui Ren, Xianjun Mol Med Rep Articles Spinal cord injury (SCI), usually resulting in severe sensory and motor deficits, is a major public health concern. Adipose-derived stem cells (ADSCs), one type of adult stem cell, are free from ethical restriction, easily isolated and enriched. Therefore, ADSCs may provide a feasible cell source for cell-based therapies in treatment of SCI. The present study successfully isolated rat ADSCs (rADSCs) from Sprague-Dawley male rats and co-cultured them with acellular spinal cord scaffolds (ASCs). Then, a rat spinal cord hemisection model was built and rats were randomly divided into 3 groups: SCI only, ASC only, and ASC + ADSCs. Furthermore, behavioral tests were conducted to evaluate functional recovery. Hematoxylin & Eosin staining and immunofluorence were carried out to assess histopathological remodeling. In addition, biotinylated dextran amines anterograde tracing was employed to visualize axon regeneration. The data demonstrated that harvested cells, which were positive for cell surface antigen cluster of differentiation (CD) 29, CD44 and CD90 and negative for CD4, detected by flow cytometry analysis, held the potential to differentiate into osteocytes and adipocytes. Rats that received transplantation of ASCs seeded with rADSCs benefited greatly in functional recovery through facilitation of histopathological rehabilitation, axon regeneration and reduction of reactive gliosis. rADSCs co-cultured with ASCs may survive and integrate into the host spinal cord on day 14 post-SCI. D.A. Spandidos 2018-02 2017-12-11 /pmc/articles/PMC5783519/ /pubmed/29257299 http://dx.doi.org/10.3892/mmr.2017.8238 Text en Copyright: © Yin et al. This is an open access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivs License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which permits use and distribution in any medium, provided the original work is properly cited, the use is non-commercial and no modifications or adaptations are made.
spellingShingle Articles
Yin, Hong
Jiang, Tao
Deng, Xi
Yu, Miao
Xing, Hui
Ren, Xianjun
A cellular spinal cord scaffold seeded with rat adipose-derived stem cells facilitates functional recovery via enhancing axon regeneration in spinal cord injured rats
title A cellular spinal cord scaffold seeded with rat adipose-derived stem cells facilitates functional recovery via enhancing axon regeneration in spinal cord injured rats
title_full A cellular spinal cord scaffold seeded with rat adipose-derived stem cells facilitates functional recovery via enhancing axon regeneration in spinal cord injured rats
title_fullStr A cellular spinal cord scaffold seeded with rat adipose-derived stem cells facilitates functional recovery via enhancing axon regeneration in spinal cord injured rats
title_full_unstemmed A cellular spinal cord scaffold seeded with rat adipose-derived stem cells facilitates functional recovery via enhancing axon regeneration in spinal cord injured rats
title_short A cellular spinal cord scaffold seeded with rat adipose-derived stem cells facilitates functional recovery via enhancing axon regeneration in spinal cord injured rats
title_sort cellular spinal cord scaffold seeded with rat adipose-derived stem cells facilitates functional recovery via enhancing axon regeneration in spinal cord injured rats
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5783519/
https://www.ncbi.nlm.nih.gov/pubmed/29257299
http://dx.doi.org/10.3892/mmr.2017.8238
work_keys_str_mv AT yinhong acellularspinalcordscaffoldseededwithratadiposederivedstemcellsfacilitatesfunctionalrecoveryviaenhancingaxonregenerationinspinalcordinjuredrats
AT jiangtao acellularspinalcordscaffoldseededwithratadiposederivedstemcellsfacilitatesfunctionalrecoveryviaenhancingaxonregenerationinspinalcordinjuredrats
AT dengxi acellularspinalcordscaffoldseededwithratadiposederivedstemcellsfacilitatesfunctionalrecoveryviaenhancingaxonregenerationinspinalcordinjuredrats
AT yumiao acellularspinalcordscaffoldseededwithratadiposederivedstemcellsfacilitatesfunctionalrecoveryviaenhancingaxonregenerationinspinalcordinjuredrats
AT xinghui acellularspinalcordscaffoldseededwithratadiposederivedstemcellsfacilitatesfunctionalrecoveryviaenhancingaxonregenerationinspinalcordinjuredrats
AT renxianjun acellularspinalcordscaffoldseededwithratadiposederivedstemcellsfacilitatesfunctionalrecoveryviaenhancingaxonregenerationinspinalcordinjuredrats
AT yinhong cellularspinalcordscaffoldseededwithratadiposederivedstemcellsfacilitatesfunctionalrecoveryviaenhancingaxonregenerationinspinalcordinjuredrats
AT jiangtao cellularspinalcordscaffoldseededwithratadiposederivedstemcellsfacilitatesfunctionalrecoveryviaenhancingaxonregenerationinspinalcordinjuredrats
AT dengxi cellularspinalcordscaffoldseededwithratadiposederivedstemcellsfacilitatesfunctionalrecoveryviaenhancingaxonregenerationinspinalcordinjuredrats
AT yumiao cellularspinalcordscaffoldseededwithratadiposederivedstemcellsfacilitatesfunctionalrecoveryviaenhancingaxonregenerationinspinalcordinjuredrats
AT xinghui cellularspinalcordscaffoldseededwithratadiposederivedstemcellsfacilitatesfunctionalrecoveryviaenhancingaxonregenerationinspinalcordinjuredrats
AT renxianjun cellularspinalcordscaffoldseededwithratadiposederivedstemcellsfacilitatesfunctionalrecoveryviaenhancingaxonregenerationinspinalcordinjuredrats