Literature DB >> 25589563

Investigating cell mechanics with atomic force microscopy.

Kristina Haase1, Andrew E Pelling2.   

Abstract

Transmission of mechanical force is crucial for normal cell development and functioning. However, the process of mechanotransduction cannot be studied in isolation from cell mechanics. Thus, in order to understand how cells 'feel', we must first understand how they deform and recover from physical perturbations. Owing to its versatility, atomic force microscopy (AFM) has become a popular tool to study intrinsic cellular mechanical properties. Used to directly manipulate and examine whole and subcellular reactions, AFM allows for top-down and reconstitutive approaches to mechanical characterization. These studies show that the responses of cells and their components are complex, and largely depend on the magnitude and time scale of loading. In this review, we generally describe the mechanotransductive process through discussion of well-known mechanosensors. We then focus on discussion of recent examples where AFM is used to specifically probe the elastic and inelastic responses of single cells undergoing deformation. We present a brief overview of classical and current models often used to characterize observed cellular phenomena in response to force. Both simple mechanistic models and complex nonlinear models have been used to describe the observed cellular behaviours, however a unifying description of cell mechanics has not yet been resolved.
© 2015 The Author(s) Published by the Royal Society. All rights reserved.

Keywords:  atomic force microscopy; cell strain; force sensing; mechanotransduction; viscoelasticity

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Substances:

Year:  2015        PMID: 25589563      PMCID: PMC4345470          DOI: 10.1098/rsif.2014.0970

Source DB:  PubMed          Journal:  J R Soc Interface        ISSN: 1742-5662            Impact factor:   4.118


  177 in total

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5.  Mechanical properties of plasma membrane and nuclear envelope measured by scanning probe microscope.

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Review 6.  Mechanotransduction - a field pulling together?

Authors:  Christopher S Chen
Journal:  J Cell Sci       Date:  2008-10-15       Impact factor: 5.285

7.  Cell-cell mechanical communication through compliant substrates.

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Journal:  Biophys J       Date:  2008-09-05       Impact factor: 4.033

8.  Two characteristic regimes in frequency-dependent dynamic reorientation of fibroblasts on cyclically stretched substrates.

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9.  Nanomechanical analysis of cells from cancer patients.

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  74 in total

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2.  Quantifying the Local Mechanical Properties of Cells in a Fibrous Three-Dimensional Microenvironment.

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5.  Computational optical palpation: a finite-element approach to micro-scale tactile imaging using a compliant sensor.

Authors:  Philip Wijesinghe; David D Sampson; Brendan F Kennedy
Journal:  J R Soc Interface       Date:  2017-03       Impact factor: 4.118

6.  Difference in biophysical properties of cancer-initiating cells in melanoma mutated zebrafish.

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7.  Dynamic Manipulation of Cell Membrane Curvature by Light-Driven Reshaping of Azopolymer.

Authors:  Selene De Martino; Wei Zhang; Lasse Klausen; Hsin-Ya Lou; Xiao Li; Felix S Alfonso; Silvia Cavalli; Paolo A Netti; Francesca Santoro; Bianxiao Cui
Journal:  Nano Lett       Date:  2019-12-19       Impact factor: 11.189

Review 8.  Microfabricated tissues for investigating traction forces involved in cell migration and tissue morphogenesis.

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9.  Ultrahigh-Resolution Optical Coherence Elastography Images Cellular-Scale Stiffness of Mouse Aorta.

Authors:  Philip Wijesinghe; Niloufer J Johansen; Andrea Curatolo; David D Sampson; Ruth Ganss; Brendan F Kennedy
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Review 10.  Cellular Biomechanics in Drug Screening and Evaluation: Mechanopharmacology.

Authors:  Ramaswamy Krishnan; Jin-Ah Park; Chun Y Seow; Peter V-S Lee; Alastair G Stewart
Journal:  Trends Pharmacol Sci       Date:  2015-12-01       Impact factor: 14.819

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