Living Cell Mechanics

Living cell mechanics is the study of how cells generate, sense, transmit, and respond to physical forces, an essential foundation for understanding cellular behavior in health and disease. Actomyosin networks, microtubules, intermediate filaments, membranes, and cell-matrix adhesions work together to control cell shape, stiffness, movement, and force transmission, while external conditions such as substrate rigidity can alter these properties. In bioengineering, mechanical measurements and models help characterize cell function, design biomaterials and tissue scaffolds, and investigate processes including migration, differentiation, cancer progression, and tissue development. This field supports more predictive approaches to regenerative medicine and engineered tissues.

Living Cell Mechanics - Related Videos

Research

JoVE Journal - Bioengineering

Live Cell Imaging during Mechanical Stretch

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Cited by 12 •

2015

A novel imaging protocol was developed using a custom motor-driven mechanical actuator to allow the measurement of real time responses to mechanical strain in live cells. Relevant to mechanobiology, the system can apply strains up to 20% while allowing near real-time imaging with confocal or atomic force microscopy.

Measuring the Mechanical Properties of Living Cells Using Atomic Force Microscopy

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Cited by 160 •

2013

This paper demonstrates a protocol to characterize the mechanical properties of living cells by means of microindentation using an Atomic Force Microscope (AFM).

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.

Characterizing Mechanical Properties of Primary Cell Wall in Living Plant Organs Using Atomic Force Microscopy

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Cited by 2 •

2022

Studies of cell wall biomechanics are essential for understanding plant growth and morphogenesis. The following protocol is proposed to investigate thin primary cell walls in the internal tissues of young plant organs using atomic force microscopy.

Education

JoVE Science Education - Advanced Biology

Live Cell Imaging of Mitosis

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2023

Mitosis is a form of cell division in which a cell’s genetic material is divided equally between two daughter cells. Mitosis can be broken down into six phases, during each of which the cell’s components, such as its chromosomes, show visually distinct characteristics. Advances in fluorescence live cell imaging have allowed scientists to study this process in great detail, providing important insights into the biological control of this process and how it might go wrong in diseases such as...

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