Mechanical Characterization

Mechanical characterization is the measurement of how a material, tissue, or engineered construct responds to applied forces, revealing properties that determine its performance and suitability for biological use. In bioengineering, tests apply controlled tensile, compressive, shear, or indentation loads while recording deformation over time, allowing researchers to quantify stress-strain behavior, stiffness, strength, and viscoelasticity. These measurements help compare biomaterials, hydrogels, scaffolds, implants, and biological tissues under relevant loading conditions. By linking mechanical properties to structure, composition, and function, mechanical characterization supports material design, quality control, tissue engineering, and the development of devices that better match native tissue behavior.

Mechanical Characterization - Related Videos

Research

JoVE Journal - Biology
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Characterizing Herbivore Resistance Mechanisms: Spittlebugs on Brachiaria spp. as an Example

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Cited by 11 •

2011

This video explains mechanisms of host plant resistance to herbivory and demonstrates a no-choice test that estimates the relative contributions of antibiosis and tolerance to spittlebug resistance in Brachiaria spp.

Research

JoVE Journal - Bioengineering

Biaxial Mechanical Characterizations of Atrioventricular Heart Valves

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Cited by 25 •

2019

This protocol involves characterizations of atrioventricular valve leaflets with force-controlled, displacement-controlled, and stress-relaxation biaxial mechanical testing procedures. Results acquired with this protocol can be used for constitutive model development to simulate the mechanical behavior of functioning valves under a finite element simulation framework.

Research

JoVE Journal - Biology
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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 Molecular Mechanisms of In vivo UVR Induced Cataract

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Cited by 4 •

2012

Cataract is the leading cause of blindness in the world. Solar ultraviolet radiation (UVR) is the main risk factor for cataract development. An animal model of far UVR-B induced cataract was developed. In this article we describe methods for investigation of cataract formation: exposure to UVR, quantitative RT-PCR and immunohistochemistry.

Characterizing Multiscale Mechanical Properties of Brain Tissue Using Atomic Force Microscopy, Impact Indentation, and Rheometry

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Cited by 36 •

2016

We present a set of techniques to characterize the viscoelastic mechanical properties of brain at the micro-, meso-, and macro-scales.

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