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A Modular Assembly of Spinal Cord–Like Tissue Allows Targeted Tissue Repair in the Transected Spinal Cord

Tissue engineering–based neural construction holds promise in providing organoids with defined differentiation and therapeutic potentials. Here, a bioengineered transplantable spinal cord–like tissue (SCLT) is assembled in vitro by simulating the white matter and gray matter composition of the spina...

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Autores principales: Lai, Bi‐Qin, Feng, Bo, Che, Ming‐Tian, Wang, Lai‐Jian, Cai, Song, Huang, Meng‐Yao, Gu, Huai‐Yu, Jiang, Bing, Ling, Eng‐Ang, Li, Meng, Zeng, Xiang, Zeng, Yuan‐Shan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6145267/
https://www.ncbi.nlm.nih.gov/pubmed/30250785
http://dx.doi.org/10.1002/advs.201800261
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author Lai, Bi‐Qin
Feng, Bo
Che, Ming‐Tian
Wang, Lai‐Jian
Cai, Song
Huang, Meng‐Yao
Gu, Huai‐Yu
Jiang, Bing
Ling, Eng‐Ang
Li, Meng
Zeng, Xiang
Zeng, Yuan‐Shan
author_facet Lai, Bi‐Qin
Feng, Bo
Che, Ming‐Tian
Wang, Lai‐Jian
Cai, Song
Huang, Meng‐Yao
Gu, Huai‐Yu
Jiang, Bing
Ling, Eng‐Ang
Li, Meng
Zeng, Xiang
Zeng, Yuan‐Shan
author_sort Lai, Bi‐Qin
collection PubMed
description Tissue engineering–based neural construction holds promise in providing organoids with defined differentiation and therapeutic potentials. Here, a bioengineered transplantable spinal cord–like tissue (SCLT) is assembled in vitro by simulating the white matter and gray matter composition of the spinal cord using neural stem cell–based tissue engineering technique. Whether the organoid would execute targeted repair in injured spinal cord is evaluated. The integrated SCLT, assembled by white matter–like tissue (WMLT) module and gray matter–like tissue (GMLT) module, shares architectural, phenotypic, and functional similarities to the adult rat spinal cord. Organotypic coculturing with the dorsal root ganglion or muscle cells shows that the SCLT embraces spinal cord organogenesis potentials to establish connections with the targets, respectively. Transplantation of the SCLT into the transected spinal cord results in a significant motor function recovery of the paralyzed hind limbs in rats. Additionally, targeted spinal cord tissue repair is achieved by the modular design of SCLT, as evidenced by an increased remyelination in the WMLT area and an enlarged innervation in the GMLT area. More importantly, the pro‐regeneration milieu facilitates the formation of a neuronal relay by the donor neurons, allowing the conduction of descending and ascending neural inputs.
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spelling pubmed-61452672018-09-24 A Modular Assembly of Spinal Cord–Like Tissue Allows Targeted Tissue Repair in the Transected Spinal Cord Lai, Bi‐Qin Feng, Bo Che, Ming‐Tian Wang, Lai‐Jian Cai, Song Huang, Meng‐Yao Gu, Huai‐Yu Jiang, Bing Ling, Eng‐Ang Li, Meng Zeng, Xiang Zeng, Yuan‐Shan Adv Sci (Weinh) Full Papers Tissue engineering–based neural construction holds promise in providing organoids with defined differentiation and therapeutic potentials. Here, a bioengineered transplantable spinal cord–like tissue (SCLT) is assembled in vitro by simulating the white matter and gray matter composition of the spinal cord using neural stem cell–based tissue engineering technique. Whether the organoid would execute targeted repair in injured spinal cord is evaluated. The integrated SCLT, assembled by white matter–like tissue (WMLT) module and gray matter–like tissue (GMLT) module, shares architectural, phenotypic, and functional similarities to the adult rat spinal cord. Organotypic coculturing with the dorsal root ganglion or muscle cells shows that the SCLT embraces spinal cord organogenesis potentials to establish connections with the targets, respectively. Transplantation of the SCLT into the transected spinal cord results in a significant motor function recovery of the paralyzed hind limbs in rats. Additionally, targeted spinal cord tissue repair is achieved by the modular design of SCLT, as evidenced by an increased remyelination in the WMLT area and an enlarged innervation in the GMLT area. More importantly, the pro‐regeneration milieu facilitates the formation of a neuronal relay by the donor neurons, allowing the conduction of descending and ascending neural inputs. John Wiley and Sons Inc. 2018-07-20 /pmc/articles/PMC6145267/ /pubmed/30250785 http://dx.doi.org/10.1002/advs.201800261 Text en © 2018 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Full Papers
Lai, Bi‐Qin
Feng, Bo
Che, Ming‐Tian
Wang, Lai‐Jian
Cai, Song
Huang, Meng‐Yao
Gu, Huai‐Yu
Jiang, Bing
Ling, Eng‐Ang
Li, Meng
Zeng, Xiang
Zeng, Yuan‐Shan
A Modular Assembly of Spinal Cord–Like Tissue Allows Targeted Tissue Repair in the Transected Spinal Cord
title A Modular Assembly of Spinal Cord–Like Tissue Allows Targeted Tissue Repair in the Transected Spinal Cord
title_full A Modular Assembly of Spinal Cord–Like Tissue Allows Targeted Tissue Repair in the Transected Spinal Cord
title_fullStr A Modular Assembly of Spinal Cord–Like Tissue Allows Targeted Tissue Repair in the Transected Spinal Cord
title_full_unstemmed A Modular Assembly of Spinal Cord–Like Tissue Allows Targeted Tissue Repair in the Transected Spinal Cord
title_short A Modular Assembly of Spinal Cord–Like Tissue Allows Targeted Tissue Repair in the Transected Spinal Cord
title_sort modular assembly of spinal cord–like tissue allows targeted tissue repair in the transected spinal cord
topic Full Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6145267/
https://www.ncbi.nlm.nih.gov/pubmed/30250785
http://dx.doi.org/10.1002/advs.201800261
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