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Integrated biochemical and mechanical signals regulate multifaceted human embryonic stem cell functions

Human embryonic stem cells (ESCs [hESCs]) proliferate as colonies wherein individual cells are strongly adhered to one another. This architecture is linked to hESC self-renewal, pluripotency, and survival and depends on epithelial cadherin (E-cadherin), NMMIIA (nonmuscle myosin IIA), and p120-cateni...

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Autores principales: Li, Dong, Zhou, Jiaxi, Wang, Lu, Shin, Myung Eun, Su, Pei, Lei, Xiaohua, Kuang, Haibin, Guo, Weixiang, Yang, Hong, Cheng, Linzhao, Tanaka, Tetsuya S., Leckband, Deborah E., Reynolds, Albert B., Duan, Enkui, Wang, Fei
Formato: Texto
Lenguaje:English
Publicado: The Rockefeller University Press 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3003326/
https://www.ncbi.nlm.nih.gov/pubmed/20974810
http://dx.doi.org/10.1083/jcb.201006094
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author Li, Dong
Zhou, Jiaxi
Wang, Lu
Shin, Myung Eun
Su, Pei
Lei, Xiaohua
Kuang, Haibin
Guo, Weixiang
Yang, Hong
Cheng, Linzhao
Tanaka, Tetsuya S.
Leckband, Deborah E.
Reynolds, Albert B.
Duan, Enkui
Wang, Fei
author_facet Li, Dong
Zhou, Jiaxi
Wang, Lu
Shin, Myung Eun
Su, Pei
Lei, Xiaohua
Kuang, Haibin
Guo, Weixiang
Yang, Hong
Cheng, Linzhao
Tanaka, Tetsuya S.
Leckband, Deborah E.
Reynolds, Albert B.
Duan, Enkui
Wang, Fei
author_sort Li, Dong
collection PubMed
description Human embryonic stem cells (ESCs [hESCs]) proliferate as colonies wherein individual cells are strongly adhered to one another. This architecture is linked to hESC self-renewal, pluripotency, and survival and depends on epithelial cadherin (E-cadherin), NMMIIA (nonmuscle myosin IIA), and p120-catenin. E-cadherin and p120-catenin work within a positive feedback loop that promotes localized accumulation of E-cadherin at intercellular junctions. NMMIIA stabilizes p120-catenin protein and controls E-cadherin–mediated intercellular adhesion. Perturbations of this signaling network disrupt colony formation, destabilize the transcriptional regulatory circuitry for pluripotency, and impair long-term survival of hESCs. Furthermore, depletion of E-cadherin markedly reduces the efficiency of reprogramming of human somatic cells to an ESC-like state. The feedback regulation and mechanical–biochemical integration provide mechanistic insights for the regulation of intercellular adhesion and cellular architecture in hESCs during long-term self-renewal. Our findings also contribute to the understanding of microenvironmental regulation of hESC identity and somatic reprogramming.
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spelling pubmed-30033262011-05-01 Integrated biochemical and mechanical signals regulate multifaceted human embryonic stem cell functions Li, Dong Zhou, Jiaxi Wang, Lu Shin, Myung Eun Su, Pei Lei, Xiaohua Kuang, Haibin Guo, Weixiang Yang, Hong Cheng, Linzhao Tanaka, Tetsuya S. Leckband, Deborah E. Reynolds, Albert B. Duan, Enkui Wang, Fei J Cell Biol Research Articles Human embryonic stem cells (ESCs [hESCs]) proliferate as colonies wherein individual cells are strongly adhered to one another. This architecture is linked to hESC self-renewal, pluripotency, and survival and depends on epithelial cadherin (E-cadherin), NMMIIA (nonmuscle myosin IIA), and p120-catenin. E-cadherin and p120-catenin work within a positive feedback loop that promotes localized accumulation of E-cadherin at intercellular junctions. NMMIIA stabilizes p120-catenin protein and controls E-cadherin–mediated intercellular adhesion. Perturbations of this signaling network disrupt colony formation, destabilize the transcriptional regulatory circuitry for pluripotency, and impair long-term survival of hESCs. Furthermore, depletion of E-cadherin markedly reduces the efficiency of reprogramming of human somatic cells to an ESC-like state. The feedback regulation and mechanical–biochemical integration provide mechanistic insights for the regulation of intercellular adhesion and cellular architecture in hESCs during long-term self-renewal. Our findings also contribute to the understanding of microenvironmental regulation of hESC identity and somatic reprogramming. The Rockefeller University Press 2010-11-01 /pmc/articles/PMC3003326/ /pubmed/20974810 http://dx.doi.org/10.1083/jcb.201006094 Text en © 2010 Li et al. This article is distributed under the terms of an Attribution–Noncommercial–Share Alike–No Mirror Sites license for the first six months after the publication date (see http://www.rupress.org/terms). After six months it is available under a Creative Commons License (Attribution–Noncommercial–Share Alike 3.0 Unported license, as described at http://creativecommons.org/licenses/by-nc-sa/3.0/).
spellingShingle Research Articles
Li, Dong
Zhou, Jiaxi
Wang, Lu
Shin, Myung Eun
Su, Pei
Lei, Xiaohua
Kuang, Haibin
Guo, Weixiang
Yang, Hong
Cheng, Linzhao
Tanaka, Tetsuya S.
Leckband, Deborah E.
Reynolds, Albert B.
Duan, Enkui
Wang, Fei
Integrated biochemical and mechanical signals regulate multifaceted human embryonic stem cell functions
title Integrated biochemical and mechanical signals regulate multifaceted human embryonic stem cell functions
title_full Integrated biochemical and mechanical signals regulate multifaceted human embryonic stem cell functions
title_fullStr Integrated biochemical and mechanical signals regulate multifaceted human embryonic stem cell functions
title_full_unstemmed Integrated biochemical and mechanical signals regulate multifaceted human embryonic stem cell functions
title_short Integrated biochemical and mechanical signals regulate multifaceted human embryonic stem cell functions
title_sort integrated biochemical and mechanical signals regulate multifaceted human embryonic stem cell functions
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3003326/
https://www.ncbi.nlm.nih.gov/pubmed/20974810
http://dx.doi.org/10.1083/jcb.201006094
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