Viscoelastic relaxation of fibroblasts over stiff polyacrylamide gels by atomic force microscopy

Cell viscoelasticity provides mechanistic insights into fundamental biological functions and may be used in many applications. Using atomic force microscopy in time and frequency domains, we find a peculiar behavior in the viscoelastic relaxation of L929 mouse fibroblasts that may help understand ho...

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Main Authors: A L D Moura, W V Santos, F D Sousa, R S Freire, C L N de Oliveira, J S de Sousa
Format: Article
Language:English
Published: IOP Publishing 2023-01-01
Series:Nano Express
Subjects:
Online Access:https://doi.org/10.1088/2632-959X/acf1b8
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author A L D Moura
W V Santos
F D Sousa
R S Freire
C L N de Oliveira
J S de Sousa
author_facet A L D Moura
W V Santos
F D Sousa
R S Freire
C L N de Oliveira
J S de Sousa
author_sort A L D Moura
collection DOAJ
description Cell viscoelasticity provides mechanistic insights into fundamental biological functions and may be used in many applications. Using atomic force microscopy in time and frequency domains, we find a peculiar behavior in the viscoelastic relaxation of L929 mouse fibroblasts that may help understand how cells perceive and adapt to distinct extracellular environments. They are stiffer when cultured over polyacrylamide gels (20-350 kPa) than over glass-bottom Petri dishes. The stiffness enhancement of cells over gels is attributed to a significant increase in the low-frequency storage shear moduli compared to the loss moduli, indicating that gels induce a remodeling of cytoskeleton components that store elastic energy. Morphological alterations are then expressed by the fractal dimension measured on confocal images of the f-actin cytoskeleton. We show a direct scaling between the fractal dimension and the substrate’s rigidity.
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spelling doaj.art-947fefdc664746bea584b428486711bb2023-09-05T11:59:41ZengIOP PublishingNano Express2632-959X2023-01-014303500810.1088/2632-959X/acf1b8Viscoelastic relaxation of fibroblasts over stiff polyacrylamide gels by atomic force microscopyA L D Moura0W V Santos1F D Sousa2R S Freire3C L N de Oliveira4J S de Sousa5https://orcid.org/0000-0003-2836-0983Departamento de Física, Universidade Federal do Ceará , Fortaleza, Ceará, BrazilDepartamento de Física, Universidade Federal do Ceará , Fortaleza, Ceará, BrazilNúcleo de Biologia Experimental, Universidade de Fortaleza , Fortaleza, Ceará, BrazilCentral Analítica, Universidade Federal do Ceará , Fortaleza, Ceará, BrazilDepartamento de Física, Universidade Federal do Ceará , Fortaleza, Ceará, BrazilDepartamento de Física, Universidade Federal do Ceará , Fortaleza, Ceará, BrazilCell viscoelasticity provides mechanistic insights into fundamental biological functions and may be used in many applications. Using atomic force microscopy in time and frequency domains, we find a peculiar behavior in the viscoelastic relaxation of L929 mouse fibroblasts that may help understand how cells perceive and adapt to distinct extracellular environments. They are stiffer when cultured over polyacrylamide gels (20-350 kPa) than over glass-bottom Petri dishes. The stiffness enhancement of cells over gels is attributed to a significant increase in the low-frequency storage shear moduli compared to the loss moduli, indicating that gels induce a remodeling of cytoskeleton components that store elastic energy. Morphological alterations are then expressed by the fractal dimension measured on confocal images of the f-actin cytoskeleton. We show a direct scaling between the fractal dimension and the substrate’s rigidity.https://doi.org/10.1088/2632-959X/acf1b8cell viscoelasticityatomic force microscopypower-law relaxationmechanostransduction
spellingShingle A L D Moura
W V Santos
F D Sousa
R S Freire
C L N de Oliveira
J S de Sousa
Viscoelastic relaxation of fibroblasts over stiff polyacrylamide gels by atomic force microscopy
Nano Express
cell viscoelasticity
atomic force microscopy
power-law relaxation
mechanostransduction
title Viscoelastic relaxation of fibroblasts over stiff polyacrylamide gels by atomic force microscopy
title_full Viscoelastic relaxation of fibroblasts over stiff polyacrylamide gels by atomic force microscopy
title_fullStr Viscoelastic relaxation of fibroblasts over stiff polyacrylamide gels by atomic force microscopy
title_full_unstemmed Viscoelastic relaxation of fibroblasts over stiff polyacrylamide gels by atomic force microscopy
title_short Viscoelastic relaxation of fibroblasts over stiff polyacrylamide gels by atomic force microscopy
title_sort viscoelastic relaxation of fibroblasts over stiff polyacrylamide gels by atomic force microscopy
topic cell viscoelasticity
atomic force microscopy
power-law relaxation
mechanostransduction
url https://doi.org/10.1088/2632-959X/acf1b8
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