Cargando…

Chemical approach to generating long-term self-renewing pMN progenitors from human embryonic stem cells

Spinal cord impairment involving motor neuron degeneration and demyelination can cause lifelong disabilities, but effective clinical interventions for restoring neurological functions have yet to be developed. In early spinal cord development, neural progenitors of the motor neuron (pMN) domain, def...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Guan-Yu, Lv, Zhu-Man, Ma, Hao-Xin, Chen, Yu, Yuan, Yuan, Sun, Ping-Xin, Feng, Yu-Qi, Li, Ya-Wen, Lu, Wen-Jie, Yang, Yu-Dong, Yang, Cheng, Yu, Xin-Lu, Wang, Chao, Liang, Shu-Long, Zhang, Ming-Liang, Li, Hui-Liang, Li, Wen-Lin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8872822/
https://www.ncbi.nlm.nih.gov/pubmed/34893854
http://dx.doi.org/10.1093/jmcb/mjab076
_version_ 1784657331290636288
author Zhang, Guan-Yu
Lv, Zhu-Man
Ma, Hao-Xin
Chen, Yu
Yuan, Yuan
Sun, Ping-Xin
Feng, Yu-Qi
Li, Ya-Wen
Lu, Wen-Jie
Yang, Yu-Dong
Yang, Cheng
Yu, Xin-Lu
Wang, Chao
Liang, Shu-Long
Zhang, Ming-Liang
Li, Hui-Liang
Li, Wen-Lin
author_facet Zhang, Guan-Yu
Lv, Zhu-Man
Ma, Hao-Xin
Chen, Yu
Yuan, Yuan
Sun, Ping-Xin
Feng, Yu-Qi
Li, Ya-Wen
Lu, Wen-Jie
Yang, Yu-Dong
Yang, Cheng
Yu, Xin-Lu
Wang, Chao
Liang, Shu-Long
Zhang, Ming-Liang
Li, Hui-Liang
Li, Wen-Lin
author_sort Zhang, Guan-Yu
collection PubMed
description Spinal cord impairment involving motor neuron degeneration and demyelination can cause lifelong disabilities, but effective clinical interventions for restoring neurological functions have yet to be developed. In early spinal cord development, neural progenitors of the motor neuron (pMN) domain, defined by the expression of oligodendrocyte transcription factor 2 (OLIG2), in the ventral spinal cord first generate motor neurons and then switch the fate to produce myelin-forming oligodendrocytes. Given their differentiation potential, pMN progenitors could be a valuable cell source for cell therapy in relevant neurological conditions such as spinal cord injury. However, fast generation and expansion of pMN progenitors in vitro while conserving their differentiation potential has so far been technically challenging. In this study, based on chemical screening, we have developed a new recipe for efficient induction of pMN progenitors from human embryonic stem cells. More importantly, these OLIG2(+) pMN progenitors can be stably maintained for multiple passages without losing their ability to produce spinal motor neurons and oligodendrocytes rapidly. Our results suggest that these self-renewing pMN progenitors could potentially be useful as a renewable source of cell transplants for spinal cord injury and demyelinating disorders.
format Online
Article
Text
id pubmed-8872822
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-88728222022-02-28 Chemical approach to generating long-term self-renewing pMN progenitors from human embryonic stem cells Zhang, Guan-Yu Lv, Zhu-Man Ma, Hao-Xin Chen, Yu Yuan, Yuan Sun, Ping-Xin Feng, Yu-Qi Li, Ya-Wen Lu, Wen-Jie Yang, Yu-Dong Yang, Cheng Yu, Xin-Lu Wang, Chao Liang, Shu-Long Zhang, Ming-Liang Li, Hui-Liang Li, Wen-Lin J Mol Cell Biol Article Spinal cord impairment involving motor neuron degeneration and demyelination can cause lifelong disabilities, but effective clinical interventions for restoring neurological functions have yet to be developed. In early spinal cord development, neural progenitors of the motor neuron (pMN) domain, defined by the expression of oligodendrocyte transcription factor 2 (OLIG2), in the ventral spinal cord first generate motor neurons and then switch the fate to produce myelin-forming oligodendrocytes. Given their differentiation potential, pMN progenitors could be a valuable cell source for cell therapy in relevant neurological conditions such as spinal cord injury. However, fast generation and expansion of pMN progenitors in vitro while conserving their differentiation potential has so far been technically challenging. In this study, based on chemical screening, we have developed a new recipe for efficient induction of pMN progenitors from human embryonic stem cells. More importantly, these OLIG2(+) pMN progenitors can be stably maintained for multiple passages without losing their ability to produce spinal motor neurons and oligodendrocytes rapidly. Our results suggest that these self-renewing pMN progenitors could potentially be useful as a renewable source of cell transplants for spinal cord injury and demyelinating disorders. Oxford University Press 2021-12-10 /pmc/articles/PMC8872822/ /pubmed/34893854 http://dx.doi.org/10.1093/jmcb/mjab076 Text en © The Author(s) (2021). Published by Oxford University Press on behalf of Journal of Molecular Cell Biology, CEMCS, CAS. https://creativecommons.org/licenses/by-nc/4.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution-NonCommercial License (https://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Article
Zhang, Guan-Yu
Lv, Zhu-Man
Ma, Hao-Xin
Chen, Yu
Yuan, Yuan
Sun, Ping-Xin
Feng, Yu-Qi
Li, Ya-Wen
Lu, Wen-Jie
Yang, Yu-Dong
Yang, Cheng
Yu, Xin-Lu
Wang, Chao
Liang, Shu-Long
Zhang, Ming-Liang
Li, Hui-Liang
Li, Wen-Lin
Chemical approach to generating long-term self-renewing pMN progenitors from human embryonic stem cells
title Chemical approach to generating long-term self-renewing pMN progenitors from human embryonic stem cells
title_full Chemical approach to generating long-term self-renewing pMN progenitors from human embryonic stem cells
title_fullStr Chemical approach to generating long-term self-renewing pMN progenitors from human embryonic stem cells
title_full_unstemmed Chemical approach to generating long-term self-renewing pMN progenitors from human embryonic stem cells
title_short Chemical approach to generating long-term self-renewing pMN progenitors from human embryonic stem cells
title_sort chemical approach to generating long-term self-renewing pmn progenitors from human embryonic stem cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8872822/
https://www.ncbi.nlm.nih.gov/pubmed/34893854
http://dx.doi.org/10.1093/jmcb/mjab076
work_keys_str_mv AT zhangguanyu chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT lvzhuman chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT mahaoxin chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT chenyu chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT yuanyuan chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT sunpingxin chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT fengyuqi chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT liyawen chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT luwenjie chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT yangyudong chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT yangcheng chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT yuxinlu chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT wangchao chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT liangshulong chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT zhangmingliang chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT lihuiliang chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells
AT liwenlin chemicalapproachtogeneratinglongtermselfrenewingpmnprogenitorsfromhumanembryonicstemcells