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Updated: Mar 6, 2026

In Vitro Generation of Somite Derivatives from Human Induced Pluripotent Stem Cells
Published on: April 25, 2019
A traction-based mechanism for somitogenesis in the chick
1MRC Clinical & Population Cytogenetics Unit, Western General Hospital, EH 4 2XU, Edinburgh, Scotland.
Chick somites form through cell-generated tractional forces. Increased cell adhesion from cell adhesion molecules (CAMs) drives this process, explaining key aspects of somitogenesis.
Area of Science:
- Developmental Biology
- Cell Biology
- Embryology
Background:
- Somitogenesis, the formation of somites, is crucial for embryonic development.
- Existing models struggle to explain certain observed phenomena in somite formation.
- Cell adhesion molecules (CAMs) play a role in cell-cell interactions during development.
Purpose of the Study:
- To propose a novel mechanism for chick somite formation based on cell tractional forces.
- To explain how increased cell adhesion, mediated by CAMs, drives somite segmentation.
- To account for previously unexplained aspects of somitogenesis.
Main Methods:
- The study is primarily theoretical, drawing on existing experimental findings (e.g., Harris et al., 1984).
- It proposes a model based on cell adhesion, density, and tractional forces.
- It analyzes the implications of this model for observed somitogenesis phenomena.
Main Results:
- Presomitic cells exert tractional forces on each other due to increased N-CAM and N-cadherin expression.
- These forces lead to spontaneous aggregation and segmentation of mesodermal cells into somites.
- This mechanism explains mesodermal segregation in highly adherent cells and somite formation under various conditions.
Conclusions:
- Cell tractional forces, driven by CAMs, provide a unifying mechanism for somitogenesis.
- This model offers explanations for mesodermal segregation, multiple somite rows, and altered somite size.
- Further experiments are suggested to test and validate this traction-based model of somite formation.
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