Mechanical Forces

Mechanical forces are physical pushes, pulls, stresses, and deformations that shape how cells and tissues behave, making them essential regulators of developmental biology. Cells detect these forces through mechanosensitive proteins, integrins, cadherins, and the cytoskeleton, which convert changes in tension or substrate stiffness into intracellular signals that alter cell adhesion, movement, proliferation, and gene expression. During embryonic development, mechanical forces coordinate tissue folding, cell migration, and organ formation, while experimental approaches such as micropatterning, force measurement, and controlled changes in matrix stiffness help reveal these processes. Understanding force-driven development also informs research on birth defects, tissue engineering, and regenerative medicine.

Mechanical Forces - Related Videos

Research

JoVE Journal - Bioengineering

Measuring the Mechanical Properties of Living Cells Using Atomic Force Microscopy

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Cited by 160 •

2013

This paper demonstrates a protocol to characterize the mechanical properties of living cells by means of microindentation using an Atomic Force Microscope (AFM).

Quantifying the Mechanical Properties of the Endothelial Glycocalyx with Atomic Force Microscopy

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Cited by 34 •

2013

The mechanical characteristics of endothelial glycocalyx were measured by indentation using micron sized spheres on AFM cantilevers. Endothelial cells were cultured in a custom chamber under physiological flow conditions to induce glycocalyx expression. Data were analyzed using a thin film model to determine the glycocalyx thickness and modulus.

Research

JoVE Journal - Biology
Free Sample

Micro-Mechanical Characterization of Lung Tissue Using Atomic Force Microscopy

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Cited by 127 •

2011

The stiffness of the extracellular matrix strongly influences multiple behaviors of adherent cells. Matrix stiffness varies spatially throughout a tissue, and undergoes modification in various disease conditions. Here we develop methods to characterize spatial variations in stiffness in normal and fibrotic mouse lung tissue using atomic force microscopy microindentation.

Characterization of the Mechanical Properties of Mouse Brain Tissue Using Atomic Force Microscopy

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2025

Source: Canovic, E. P., et al. Characterizing Multiscale Mechanical Properties of Brain Tissue Using Atomic Force Microscopy, Impact Indentation, and Rheometry. J. Vis. Exp. (2016)This video demonstrates the use of atomic force microscopy (AFM) to measure the viscoelastic properties of brain tissue, where a cantilever with a spherical probe interacts with the tissue and bends under applied forces. A laser beam deflected onto a detector tracks the cantilever to measure indentation depth and...

Research

JoVE Journal - Biology
Free Sample

Evaluation of Respiratory System Mechanics in Mice using the Forced Oscillation Technique

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Cited by 130 •

2013

The present protocol provides a detailed step-by-step description of the procedures required to execute measurements of respiratory system mechanics as well as the assessment of airway responsiveness to inhaled methacholine in mice using the forced oscillation technique (flexiVent; SCIREQ Inc, Montreal, Qc, Canada).

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