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Micro-Mechanical Characterization of Lung Tissue Using Atomic Force Microscopy

Matrix stiffness strongly influences growth, differentiation and function of adherent cells(1-3). On the macro scale the stiffness of tissues and organs within the human body span several orders of magnitude(4). Much less is known about how stiffness varies spatially within tissues, and what the sco...

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Autores principales: Liu, Fei, Tschumperlin, Daniel J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MyJove Corporation 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3217627/
https://www.ncbi.nlm.nih.gov/pubmed/21897356
http://dx.doi.org/10.3791/2911
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author Liu, Fei
Tschumperlin, Daniel J.
author_facet Liu, Fei
Tschumperlin, Daniel J.
author_sort Liu, Fei
collection PubMed
description Matrix stiffness strongly influences growth, differentiation and function of adherent cells(1-3). On the macro scale the stiffness of tissues and organs within the human body span several orders of magnitude(4). Much less is known about how stiffness varies spatially within tissues, and what the scope and spatial scale of stiffness changes are in disease processes that result in tissue remodeling. To better understand how changes in matrix stiffness contribute to cellular physiology in health and disease, measurements of tissue stiffness obtained at a spatial scale relevant to resident cells are needed. This is particularly true for the lung, a highly compliant and elastic tissue in which matrix remodeling is a prominent feature in diseases such as asthma, emphysema, hypertension and fibrosis. To characterize the local mechanical environment of lung parenchyma at a spatial scale relevant to resident cells, we have developed methods to directly measure the local elastic properties of fresh murine lung tissue using atomic force microscopy (AFM) microindentation. With appropriate choice of AFM indentor, cantilever, and indentation depth, these methods allow measurements of local tissue shear modulus in parallel with phase contrast and fluorescence imaging of the region of interest. Systematic sampling of tissue strips provides maps of tissue mechanical properties that reveal local spatial variations in shear modulus. Correlations between mechanical properties and underlying anatomical and pathological features illustrate how stiffness varies with matrix deposition in fibrosis. These methods can be extended to other soft tissues and disease processes to reveal how local tissue mechanical properties vary across space and disease progression.
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spelling pubmed-32176272011-11-21 Micro-Mechanical Characterization of Lung Tissue Using Atomic Force Microscopy Liu, Fei Tschumperlin, Daniel J. J Vis Exp Biophysics Matrix stiffness strongly influences growth, differentiation and function of adherent cells(1-3). On the macro scale the stiffness of tissues and organs within the human body span several orders of magnitude(4). Much less is known about how stiffness varies spatially within tissues, and what the scope and spatial scale of stiffness changes are in disease processes that result in tissue remodeling. To better understand how changes in matrix stiffness contribute to cellular physiology in health and disease, measurements of tissue stiffness obtained at a spatial scale relevant to resident cells are needed. This is particularly true for the lung, a highly compliant and elastic tissue in which matrix remodeling is a prominent feature in diseases such as asthma, emphysema, hypertension and fibrosis. To characterize the local mechanical environment of lung parenchyma at a spatial scale relevant to resident cells, we have developed methods to directly measure the local elastic properties of fresh murine lung tissue using atomic force microscopy (AFM) microindentation. With appropriate choice of AFM indentor, cantilever, and indentation depth, these methods allow measurements of local tissue shear modulus in parallel with phase contrast and fluorescence imaging of the region of interest. Systematic sampling of tissue strips provides maps of tissue mechanical properties that reveal local spatial variations in shear modulus. Correlations between mechanical properties and underlying anatomical and pathological features illustrate how stiffness varies with matrix deposition in fibrosis. These methods can be extended to other soft tissues and disease processes to reveal how local tissue mechanical properties vary across space and disease progression. MyJove Corporation 2011-08-28 /pmc/articles/PMC3217627/ /pubmed/21897356 http://dx.doi.org/10.3791/2911 Text en Copyright © 2011, Journal of Visualized Experiments http://creativecommons.org/licenses/by-nc-nd/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial-NoDerivs 3.0 Unported License. To view a copy of this license, visithttp://creativecommons.org/licenses/by-nc-nd/3.0/
spellingShingle Biophysics
Liu, Fei
Tschumperlin, Daniel J.
Micro-Mechanical Characterization of Lung Tissue Using Atomic Force Microscopy
title Micro-Mechanical Characterization of Lung Tissue Using Atomic Force Microscopy
title_full Micro-Mechanical Characterization of Lung Tissue Using Atomic Force Microscopy
title_fullStr Micro-Mechanical Characterization of Lung Tissue Using Atomic Force Microscopy
title_full_unstemmed Micro-Mechanical Characterization of Lung Tissue Using Atomic Force Microscopy
title_short Micro-Mechanical Characterization of Lung Tissue Using Atomic Force Microscopy
title_sort micro-mechanical characterization of lung tissue using atomic force microscopy
topic Biophysics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3217627/
https://www.ncbi.nlm.nih.gov/pubmed/21897356
http://dx.doi.org/10.3791/2911
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