論文

査読有り 国際誌
2021年5月

Edge-localized alteration in pluripotency state of mouse ES cells forming topography-confined layers on designed mesh substrates

Stem Cell Research
  • Yuta Ando
  • ,
  • Kennedy Omondi Okeyo
  • ,
  • Junko Sunaga
  • ,
  • Taiji Adachi

53
#102352
開始ページ
102352
終了ページ
102352
記述言語
英語
掲載種別
研究論文(学術雑誌)
DOI
10.1016/j.scr.2021.102352
出版者・発行元
Elsevier BV

Self-organization of pluripotent stem cells during tissue formation is directed by the adhesion microenvironment, which defines the resulting tissue topography. Although the influence of tissue topography on pluripotency state has been inferred, this aspect of self-organization remains largely unexplored. In this study, to determine the effect of self-organized tissue topography on pluripotency loss, we designed novel island mesh substrates to confine the self-organization process of mouse embryonic stem cells, enabling us to generate isolated cell layers with an island-like topography and overhanging edges. Using immunofluorescence microscopy, we determined that cells at the tissue edge exhibited deformed nuclei associated with low OCT3/4, in contrast with cells nested in the tissue interior which had round-shaped nuclei and exhibited sustained OCT3/4 expression. Interestingly, F-actin and phospho-myosin light chain were visibly enriched at the tissue edge where ERK activation and elevated AP-2γ expression were also found to be localized, as determined using both immunofluorescence microscopy and RT-qPCR analysis. Since actomyosin contractility is known to cause ERK activation, these results suggest that mechanical condition at the tissue edge can contribute to loss of pluripotency leading to differentiation. Thus, our study draws attention to the influence of self-organized tissue topography in stem cell culture and differentiation.

リンク情報
DOI
https://doi.org/10.1016/j.scr.2021.102352
PubMed
https://www.ncbi.nlm.nih.gov/pubmed/33901814
ID情報
  • DOI : 10.1016/j.scr.2021.102352
  • ISSN : 1873-5061
  • PubMed ID : 33901814

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