Mechanotransduction Process

Mechanotransduction is the process by which cells convert mechanical forces, such as pressure, stretch, shear, or substrate stiffness, into biochemical or electrical signals. Mechanical deformation can alter the shape or tension of membrane proteins, open mechanically gated ion channels, or activate force-sensitive pathways involving integrins and the cytoskeleton. These signals regulate processes including cell movement, growth, differentiation, and tissue remodeling. In physics and biophysics, studying mechanotransduction links measurable forces to cellular responses, supporting research on hearing, touch, cardiovascular function, bone adaptation, and diseases in which abnormal mechanical signaling changes cell behavior.

Mechanotransduction Process - Related Videos

Research

JoVE Journal - Bioengineering
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Axon Stretch Growth: The Mechanotransduction of Neuronal Growth

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Cited by 30 •

2011

A unique tissue engineering method was developed to elongate numerous nerve fibers in culture by recapitulating axon stretch growth; a form of nervous system growth whereby nerves elongate in conjunction with growth of the enlarging body.

Research

JoVE Journal - Bioengineering

An Experimental System to Study Mechanotransduction in Fetal Lung Cells

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Cited by 7 •

2012

Mechanical forces play a key role in lung development and lung injury. Here, we describe a method to isolate rodent fetal lung type II epithelial cells and fibroblasts and to expose them to mechanical stimulation using an in vitro system.

A Mouse Model of Mechanotransduction-driven, Human-like Hypertrophic Scarring

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Cited by 3 •

2024

This protocol will explain how to establish a hypertrophic scarring murine model that increases mechanotransduction signaling to simulate human-like scarring. This method involves increasing mechanical tension across a healing incision in a mouse and using a specialized device to create reproducible, excessive scar tissue for detailed histological and bioinformatic analyses.

Preparation of Hydroxy-PAAm Hydrogels for Decoupling the Effects of Mechanotransduction Cues

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Cited by 22 •

2014

We present a new polyacrylamide hydrogel, called hydroxy-PAAm, that allows a direct binding of ECM proteins with minimal cost or expertise. The combination of hydroxy-PAAm hydrogels with microcontact printing facilitates independent control of many cues of the natural cell microenvironment for studying cellular mechanostransduction.

A Lab-On-A-Chip Platform for Stimulating Osteocyte Mechanotransduction and Analyzing Functional Outcomes of Bone Remodeling

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Cited by 9 •

2020

Here, we present protocols for analyzing bone remodeling within a lab-on-a-chip platform. A 3D printed mechanical loading device can be paired with the platform to induce osteocyte mechanostransduction by deforming the cellular matrix. The platform can also be used to quantify bone remodeling functional outcomes from osteoclasts and osteoblasts (resorption/formation).

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