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Updated: Nov 17, 2025

Generation of Dispersed Presomitic Mesoderm Cell Cultures for Imaging of the Zebrafish Segmentation Clock in Single Cells
Published on: July 24, 2014
From local resynchronization to global pattern recovery in the zebrafish segmentation clock
Koichiro Uriu1, Bo-Kai Liao2,3,4,5, Andrew C Oates3,4,5,6
1Graduate School of Natural Science and Technology, Kanazawa University, Kakuma-machi, Kanazawa, Japan.
Tissue deformation and cell movement aid the zebrafish segmentation clock
Area of Science:
- Developmental biology
- Systems biology
- Biophysics
Background:
- The vertebrate segmentation clock relies on Delta-Notch signaling for synchronized gene expression and proper segment formation.
- The role of tissue deformation in complementing cell-cell signaling for segmentation patterning remains unclear.
Purpose of the Study:
- To investigate how tissue deformation influences pattern recovery in the zebrafish segmentation clock after disruption of signaling.
- To develop a theoretical model integrating tissue mechanics with cellular oscillators.
Main Methods:
- Experimental manipulation of Notch inhibition in zebrafish embryos to observe segment recovery.
- Development of a computational model combining coupled oscillators with tissue mechanics.
- Analysis of gene expression patterns and cell advection during segment formation.
Main Results:
- Removing Notch inhibition led to intermingled normal and defective segments, not uniform recovery.
- The new theoretical model successfully captured these intermingled patterns.
- Tissue elongation and cell advection patterns explained the observed recovery dynamics.
Conclusions:
- Segmental pattern recovery involves both rapid local cell synchronization and slower, large-scale tissue morphogenesis.
- Tissue deformation and cell advection are crucial factors in the vertebrate segmentation clock's patterning process.
- A combined approach of theory and experiment provides a comprehensive understanding of developmental patterning.
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