Mechanical Stimulation

Mechanical stimulation is the application of controlled physical forces to cells, tissues, or biomaterials to influence biological structure and function, making it an important tool in bioengineering. Forces such as stretch, compression, fluid shear, and substrate deformation are detected through mechanosensitive proteins and cell adhesion structures, triggering intracellular signaling and changes in gene expression, proliferation, or differentiation. Researchers use mechanical stimulation in engineered tissue culture, regenerative medicine, and disease modeling to reproduce physiological environments and improve tissue maturation. It also helps clarify how cells sense their surroundings, adapt to mechanical conditions, and contribute to the design of responsive biomedical materials and therapeutic strategies.

Mechanical Stimulation - Related Videos

Research

JoVE Journal - Biology

Mechanical Stimulation of Chondrocyte-agarose Hydrogels

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Cited by 29 •

2012

The biosynthesis of cartilaginous extracellular matrix by chondrocytes can be affected by application of mechanical stimuli. This method describes the technique of applying dynamic compressive strains to chondrocytes encapsulated in 3D constructs and the evaluation of induced changes in chondrocyte metabolism.

Whole Cell Patch Clamp for Investigating the Mechanisms of Infrared Neural Stimulation

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Cited by 16 •

2013

Infrared nerve stimulation has been proposed as an alternative to electrical stimulation in a range of nerve types, including those associated with the auditory system. This protocol describes a patch clamp method for studying the mechanism of infrared nerve stimulation in a culture of primary auditory neurons.

Using a Microfluidics Device for Mechanical Stimulation and High Resolution Imaging of C. elegans

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Cited by 18 •

2018

New tools for mechanobiology research are needed to understand how mechanical stress activates biochemical pathways and elicits biological responses. Here, we showcase a new method for selective mechanical stimulation of immobilized animals with a microfluidic trap allowing high-resolution imaging of cellular responses.

Mechanical Stimulation of Stem Cells Using Cyclic Uniaxial Strain

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Cited by 6 •

2007

It is widely understood that mechanical forces in the body can influence cell differentiation and proliferation. Here we present a video protocol demonstrating the use of a custom-built bioreactor for delivering uniaxial cyclic tensile strain to stem cells cultured on flexible micropatterned substrates.

Live Cell Response to Mechanical Stimulation Studied by Integrated Optical and Atomic Force Microscopy

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Cited by 17 •

2010

This paper aims to instruct the reader in the operation of an integrated atomic force-optical imaging microscope for mechanical stimulation of live cells in culture. A step-by-step protocol is presented. A representative data set that shows live cell response to mechanical stimulation is presented.

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