Abstract
Living tissues are active multifunctional materials capable of generating, sensing, withstanding and responding to mechanical stress. These capabilities enable tissues to adopt complex shapes during development, to sustain those shapes during homeostasis, and to restore them during healing and regeneration. Abnormal stress is associated with a broad range of pathologies, including developmental defects, inflammatory diseases, tumor growth and metastasis. Here we review techniques that measure mechanical stress in living tissues with cellular and subcellular resolution. We begin with 2D techniques to map stress in cultured cell monolayers, which provide the highest resolution and accessibility. These techniques include 2D traction microscopy, micro-pillar arrays, monolayer stress microscopy, and monolayer stretching between flexible cantilevers. We next focus on 3D traction microscopy and the micro-bulge test, which enable mapping forces in tissues cultured in 3D. Finally, we review techniques to measure stress in vivo, including servo-null methods for measuring luminal pressure, deformable inclusions, FRET sensors, laser ablation and computational methods for force inference. Whereas these techniques remain far from becoming everyday tools in biomedical laboratories, their rapid development is fostering key advances in the way we understand the role of mechanics in morphogenesis, homeostasis and disease.
🔬 Techniques
🧬 Organisms
✨ Fluorophores
🧪 Sample Preparation
🏭 Microscope Brands
🏛️ Research Organizations (ROR)
Affiliated research institutions:
📊 Figures
Box 1
Geometric representation of the traction vector, T u2192 (red), acting at point A of a body subject to external forces (green arrows).
Box 2
Geometric representation of the stress tensor u03c3 at point A of a body under a load F u2192 .
Box 3
Illustrative sketch of different representative stress states that are present during embryo implantation.
Box 5
Illustrative representation of the parameters and variables of a vertex model: vertex v, edge u03bb, face u03ba, cell u03b1, edge length l u03bb , face area A u03ba , cell volume V u03b1 , vertex appl...
Figure 1
Techniques used to measure tractions and internal stresses in 2D tissues.
(a) In TFM 2D, a flat elastic gel is synthetized, and a tissue is allowed to attach to its surface. Cells exert tractions on the substrate and the resulting deformation can be tracked by adding fluore...
Figure 2
Techniques used to measure tractions and internal stresses in 3D tissues in vitro .
(a) In TFM 2.5D, a tissue is seeded on top of a 2D elastic substrate, and the displacements of the substrate are measured in 3D. From these displacements, the 3D traction field can be calculated. For ...
Figure images are served from the NIH/NLM PubMed Central Open Access Subset or Europe PMC; copyright remains with the publishers and authors.
💬 Discussion
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