Tendon Mechanical Properties

Tendon mechanical properties describe how tendons respond to forces, including stiffness, strength, elasticity, and time-dependent behavior, making them central to understanding movement and injury. Primarily composed of aligned collagen fibers, tendons transmit muscle forces to bone while their stress-strain response reflects elastic deformation at low loads, progressive fiber recruitment, and failure at excessive strain; viscoelastic behavior also produces relaxation and creep over time. In bioengineering, measuring these properties supports the design of tendon substitutes, scaffolds, and rehabilitation strategies, while helping researchers evaluate tissue adaptation, degeneration, and the mechanical performance of engineered or repaired tendons.

Tendon Mechanical Properties - Related Videos

Research

JoVE Journal - Biology

Ex vivo Mechanical Loading of Tendon

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2007

A new in vitro system for simultaneously loading four tendons in culture is described.

Preparation of Rat Tail Tendons for Biomechanical and Mechanobiological Studies

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Cited by 21 •

2010

This article describes the experimental procedures used to prepare rat tail tendons for biomechanical and mechanobiological studies. Several features of the main steps in preparation are demonstrated, beginning with extraction, cross-sectional area measurement, rinsing and loading into the bioreactor chamber.

In Vivo Evaluation of the Mechanical and Viscoelastic Properties of the Rat Tongue

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2017

We describe a surgical procedure in an anesthetized rat model for determining the muscle tone and viscoelastic properties of the tongue. The procedure involves specific stimulation of the hypoglossal nerves and application of passive Lissajous force/deformation curves to the muscle.

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.

Impact Indentation for Assessing the Mechanical Properties of a Mouse Brain Tissue

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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)The video demonstrates using impact indentation to measure the mechanical properties of a hydrated mouse brain tissue, including stiffness, energy dissipation, and damping, through probe displacement and velocity analysis.

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