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Electroacupuncture facilitates the integration of a grafted TrkC‐modified mesenchymal stem cell‐derived neural network into transected spinal cord in rats via increasing neurotrophin‐3

AIMS: This study was aimed to investigate whether electroacupuncture (EA) would increase the secretion of neurotrophin‐3 (NT‐3) from injured spinal cord tissue, and, if so, whether the increased NT‐3 would promote the survival, differentiation, and migration of grafted tyrosine kinase C (TrkC)‐modif...

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Autores principales: Yang, Yang, Xu, Hao‐Yu, Deng, Qing‐Wen, Wu, Guo‐Hui, Zeng, Xiang, Jin, Hui, Wang, Lai‐Jian, Lai, Bi‐Qin, Li, Ge, Ma, Yuan‐Huan, Jiang, Bin, Ruan, Jing‐Wen, Wang, Ya‐Qiong, Ding, Ying, Zeng, Yuan‐Shan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8193704/
https://www.ncbi.nlm.nih.gov/pubmed/33763978
http://dx.doi.org/10.1111/cns.13638
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author Yang, Yang
Xu, Hao‐Yu
Deng, Qing‐Wen
Wu, Guo‐Hui
Zeng, Xiang
Jin, Hui
Wang, Lai‐Jian
Lai, Bi‐Qin
Li, Ge
Ma, Yuan‐Huan
Jiang, Bin
Ruan, Jing‐Wen
Wang, Ya‐Qiong
Ding, Ying
Zeng, Yuan‐Shan
author_facet Yang, Yang
Xu, Hao‐Yu
Deng, Qing‐Wen
Wu, Guo‐Hui
Zeng, Xiang
Jin, Hui
Wang, Lai‐Jian
Lai, Bi‐Qin
Li, Ge
Ma, Yuan‐Huan
Jiang, Bin
Ruan, Jing‐Wen
Wang, Ya‐Qiong
Ding, Ying
Zeng, Yuan‐Shan
author_sort Yang, Yang
collection PubMed
description AIMS: This study was aimed to investigate whether electroacupuncture (EA) would increase the secretion of neurotrophin‐3 (NT‐3) from injured spinal cord tissue, and, if so, whether the increased NT‐3 would promote the survival, differentiation, and migration of grafted tyrosine kinase C (TrkC)‐modified mesenchymal stem cell (MSC)‐derived neural network cells. We next sought to determine if the latter would integrate with the host spinal cord neural circuit to improve the neurological function of injured spinal cord. METHODS: After NT‐3‐modified Schwann cells (SCs) and TrkC‐modified MSCs were co‐cultured in a gelatin sponge scaffold for 14 days, the MSCs differentiated into neuron‐like cells that formed a MSC‐derived neural network (MN) implant. On this basis, we combined the MN implantation with EA in a rat model of spinal cord injury (SCI) and performed immunohistochemical staining, neural tracing, electrophysiology, and behavioral testing after 8 weeks. RESULTS: Electroacupuncture application enhanced the production of endogenous NT‐3 in damaged spinal cord tissues. The increase in local NT‐3 production promoted the survival, migration, and maintenance of the grafted MN, which expressed NT‐3 high‐affinity TrkC. The combination of MN implantation and EA application improved cortical motor‐evoked potential relay and facilitated the locomotor performance of the paralyzed hindlimb compared with those of controls. These results suggest that the MN was better integrated into the host spinal cord neural network after EA treatment compared with control treatment. CONCLUSIONS: Electroacupuncture as an adjuvant therapy for TrkC‐modified MSC‐derived MN, acted by increasing the local production of NT‐3, which accelerated neural network reconstruction and restoration of spinal cord function following SCI.
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spelling pubmed-81937042021-06-15 Electroacupuncture facilitates the integration of a grafted TrkC‐modified mesenchymal stem cell‐derived neural network into transected spinal cord in rats via increasing neurotrophin‐3 Yang, Yang Xu, Hao‐Yu Deng, Qing‐Wen Wu, Guo‐Hui Zeng, Xiang Jin, Hui Wang, Lai‐Jian Lai, Bi‐Qin Li, Ge Ma, Yuan‐Huan Jiang, Bin Ruan, Jing‐Wen Wang, Ya‐Qiong Ding, Ying Zeng, Yuan‐Shan CNS Neurosci Ther Original Articles AIMS: This study was aimed to investigate whether electroacupuncture (EA) would increase the secretion of neurotrophin‐3 (NT‐3) from injured spinal cord tissue, and, if so, whether the increased NT‐3 would promote the survival, differentiation, and migration of grafted tyrosine kinase C (TrkC)‐modified mesenchymal stem cell (MSC)‐derived neural network cells. We next sought to determine if the latter would integrate with the host spinal cord neural circuit to improve the neurological function of injured spinal cord. METHODS: After NT‐3‐modified Schwann cells (SCs) and TrkC‐modified MSCs were co‐cultured in a gelatin sponge scaffold for 14 days, the MSCs differentiated into neuron‐like cells that formed a MSC‐derived neural network (MN) implant. On this basis, we combined the MN implantation with EA in a rat model of spinal cord injury (SCI) and performed immunohistochemical staining, neural tracing, electrophysiology, and behavioral testing after 8 weeks. RESULTS: Electroacupuncture application enhanced the production of endogenous NT‐3 in damaged spinal cord tissues. The increase in local NT‐3 production promoted the survival, migration, and maintenance of the grafted MN, which expressed NT‐3 high‐affinity TrkC. The combination of MN implantation and EA application improved cortical motor‐evoked potential relay and facilitated the locomotor performance of the paralyzed hindlimb compared with those of controls. These results suggest that the MN was better integrated into the host spinal cord neural network after EA treatment compared with control treatment. CONCLUSIONS: Electroacupuncture as an adjuvant therapy for TrkC‐modified MSC‐derived MN, acted by increasing the local production of NT‐3, which accelerated neural network reconstruction and restoration of spinal cord function following SCI. John Wiley and Sons Inc. 2021-03-24 /pmc/articles/PMC8193704/ /pubmed/33763978 http://dx.doi.org/10.1111/cns.13638 Text en © 2021 The Authors. CNS Neuroscience & Therapeutics published by John Wiley & Sons Ltd. https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Articles
Yang, Yang
Xu, Hao‐Yu
Deng, Qing‐Wen
Wu, Guo‐Hui
Zeng, Xiang
Jin, Hui
Wang, Lai‐Jian
Lai, Bi‐Qin
Li, Ge
Ma, Yuan‐Huan
Jiang, Bin
Ruan, Jing‐Wen
Wang, Ya‐Qiong
Ding, Ying
Zeng, Yuan‐Shan
Electroacupuncture facilitates the integration of a grafted TrkC‐modified mesenchymal stem cell‐derived neural network into transected spinal cord in rats via increasing neurotrophin‐3
title Electroacupuncture facilitates the integration of a grafted TrkC‐modified mesenchymal stem cell‐derived neural network into transected spinal cord in rats via increasing neurotrophin‐3
title_full Electroacupuncture facilitates the integration of a grafted TrkC‐modified mesenchymal stem cell‐derived neural network into transected spinal cord in rats via increasing neurotrophin‐3
title_fullStr Electroacupuncture facilitates the integration of a grafted TrkC‐modified mesenchymal stem cell‐derived neural network into transected spinal cord in rats via increasing neurotrophin‐3
title_full_unstemmed Electroacupuncture facilitates the integration of a grafted TrkC‐modified mesenchymal stem cell‐derived neural network into transected spinal cord in rats via increasing neurotrophin‐3
title_short Electroacupuncture facilitates the integration of a grafted TrkC‐modified mesenchymal stem cell‐derived neural network into transected spinal cord in rats via increasing neurotrophin‐3
title_sort electroacupuncture facilitates the integration of a grafted trkc‐modified mesenchymal stem cell‐derived neural network into transected spinal cord in rats via increasing neurotrophin‐3
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8193704/
https://www.ncbi.nlm.nih.gov/pubmed/33763978
http://dx.doi.org/10.1111/cns.13638
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