Summary of ssbd-repos-000136

SSBD:database
URL

Name
ssbd-repos-000136 (136-Matsumiya-ESCellDyn)
URL
DOI
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Title
Time-lapse imaging of Hes7 promoter-driven luciferase activity in mouse embryos or presomitic mesoderm-like tissues (iPSM) induced from mouse ES cells
Description
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Submited Date
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Release Date
2019-11-20
Updated Date
-
License
Funding information
-
File formats
Data size
216.6 MB

Organism
M. musculus
Strain
mouse embryonic stem cells (E14TG2a)
Cell Line
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Genes
Hes7
Proteins
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GO Molecular Function (MF)
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GO Biological Process (BP)
segmentation, somite development
GO Cellular Component (CC)
NA
Study Type
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Imaging Methods
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Method Summary
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Related paper(s)

Marina Matsumiya, Takehito Tomita, Kumiko Yoshioka-Kobayashi, Akihiro Isomura, Ryoichiro Kageyama (2018) ES cell-derived presomitic mesoderm-like tissues for analysis of synchronized oscillations in the segmentation clock., Development (Cambridge, England), Volume 145, Number 4

Published in 2018 Feb 14 (Electronic publication in Feb. 14, 2018, midnight )

(Abstract) Somites are periodically formed by segmentation of the anterior parts of the presomitic mesoderm (PSM). In the mouse embryo, this periodicity is controlled by the segmentation clock gene Hes7, which exhibits wave-like oscillatory expression in the PSM. Despite intensive studies, the exact mechanism of such synchronous oscillatory dynamics of Hes7 expression still remains to be analyzed. Detailed analysis of the segmentation clock has been hampered because it requires the use of live embryos, and establishment of an in vitro culture system would facilitate such analyses. Here, we established a simple and efficient method to generate mouse ES cell-derived PSM-like tissues, in which Hes7 expression oscillates like traveling waves. In these tissues, Hes7 oscillation is synchronized between neighboring cells, and the posterior-anterior axis is self-organized as the central-peripheral axis. This method is applicable to chemical-library screening and will facilitate the analysis of the molecular nature of the segmentation clock.
(MeSH Terms)

Contact(s)
Ryoichiro Kageyama
Organization(s)
Kyoto University , Institute for Frontier Life and Medical Sciences
Image Data Contributors
Quantitative Data Contributors

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