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Cell strain-stiffening drives cell breakout from embedded spheroids.
Arxiv
|February 23, 2026
Summary
Cells escape spheroids via mechanical forces. Strain stiffening amplifies stress, enabling invasion through cell adhesion changes. This reveals distinct mechanical pathways for spheroid escape.
Area of Science:
- Biophysics
- Cellular Mechanics
- Computational Biology
Background:
- Cellular escape from spheroids is crucial for understanding tissue development and disease.
- Existing models lack a detailed mechanical framework linking intracellular, intercellular, and cell-extracellular matrix (ECM) stresses.
Purpose of the Study:
- To develop a 3D mechanical framework for quantifying cell-level stress within spheroids.
- To investigate the relationship between cell mechanics, spheroid properties, and invasion modes.
Main Methods:
- Coupling a 3D vertex model of spheroids with a fibrous ECM network.
- Deriving a 3D Cauchy stress tensor for deformable polyhedral cells.
- Introducing an extended 3D vertex model with tunable cell-cell adhesion springs.
Main Results:
- Developed a framework for direct, 3D cell-level stress quantification.
- Solid-like spheroids show broader stress distributions; fluid-like spheroids exhibit lower, disorganized stresses.
- Demonstrated single-cell strain stiffening, where elongation nonlinearly increases shear stress.
- Identified mechanical conditions for single-cell breakout (strain stiffening + reduced adhesion) and multi-cell streaming (anisotropic adhesion).
Conclusions:
- Cell shape anisotropy is not a reliable indicator of mechanical state.
- Strain stiffening at the single-cell level can drive matrix remodeling and invasion.
- Distinct mechanical pathways involving cell strain, stress amplification, and adhesion govern spheroid invasion modes.
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