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Updated: Aug 5, 2026

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Blastomere Explants to Test for Cell Fate Commitment During Embryonic Development
Published on: January 26, 2013
Embryogenesis: Centering and decentering during cleavage
1Cell Architecture Laboratory, National Institute of Genetics, Mishima, Japan; Genetics Program, The Graduate University of Advanced Studies (Sokendai), Mishima, Japan.
Current Biology : CB
|August 3, 2026
Summary
Cell size changes drive nuclear repositioning during sea urchin embryo development. This study reveals how cell size shifts forces to control nuclear apical displacement in early development.
Area of Science:
- Developmental Biology
- Cell Biology
- Embryology
Background:
- Sea urchin embryos exhibit reductive cleavage, a process involving cell division with minimal growth.
- During this process, nuclei progressively change position along the apical-basal axis of the embryo.
Purpose of the Study:
- To investigate the mechanisms controlling nuclear positional changes during sea urchin embryonic development.
- To determine the role of cell size in regulating nuclear displacement along the apical-basal axis.
Main Methods:
- Utilizing live imaging techniques to observe nuclear dynamics in sea urchin embryos.
- Employing biophysical methods to analyze the forces influencing nuclear positioning within developing cells.
Main Results:
- Nuclear position shifts progressively along the apical-basal axis during reductive cleavage.
- Cell size was identified as a critical factor influencing the balance between forces that center and decenter the nucleus.
- Changes in cell size directly correlate with the apical displacement of nuclei.
Conclusions:
- Cell size is a key determinant of nuclear positioning during sea urchin embryonic development.
- The interplay between cell size and physical forces governs nuclear apical displacement, providing insights into fundamental developmental processes.
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