Tissue Level Mechanics

Tissue level mechanics is the study of how biological tissues bear, transmit, and respond to physical forces, linking material behavior to tissue structure and function. Mechanical loading produces stress and strain within the extracellular matrix and cells, while properties such as stiffness, elasticity, and viscoelasticity determine deformation, force distribution, and time-dependent recovery. In bioengineering, these principles guide the design of biomaterials, scaffolds, and tissue-engineered constructs that reproduce native mechanical environments. They also support analysis of tissue development, injury, disease progression, and repair, helping researchers predict how engineered or biological tissues will perform under physiological conditions.

Tissue Level Mechanics - Related Videos

Research

JoVE Journal - Bioengineering

Patterning the Geometry of Human Embryonic Stem Cell Colonies on Compliant Substrates to Control Tissue-Level Mechanics

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Cited by 4 •

2019

Extracellular matrix ligands can be patterned onto polyacrylamide hydrogels to enable the culture of human embryonic stem cells in confined colonies on compliant substrates. This method can be combined with traction force microscopy and biochemical assays to examine the interplay between tissue geometry, cell-generated forces, and fate specification.

Mechanical Dissociation: A Method to Obtain Viable Cells from a Tissue

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2023

This video describes the non-enzymatic dissociation of fresh human tissue to obtain viable cells. The technique is used for qualitative and quantitative analysis of CD45 positive cells (lymphocytes/leukocytes) present in various normal and malignant human tissues.

Design of a Biaxial Mechanical Loading Bioreactor for Tissue Engineering

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Cited by 24 •

2013

We designed a novel mechanical loading bioreactor that can apply uniaxial or biaxial mechanical strain to a cartilage biocomposite prior to transplantation into an articular cartilage defect.

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.

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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