Cell guidance on nanogratings: a computational model of the interplay between PC12 growth cones and nanostructures.

<h4>Background</h4>Recently, the effects of nanogratings have been investigated on PC12 with respect to cell polarity, neuronal differentiation, migration, maturation of focal adhesions and alignment of neurites.<h4>Methodology/principal findings</h4>A synergistic procedure w...

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Main Authors: Pier Nicola Sergi, Iolanda Morana Roccasalvo, Ilaria Tonazzini, Marco Cecchini, Silvestro Micera
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/23936404/pdf/?tool=EBI
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spelling doaj-96cf9d10bbeb48a5ba668ee6747e2c2f2021-03-03T23:02:35ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-0188e7030410.1371/journal.pone.0070304Cell guidance on nanogratings: a computational model of the interplay between PC12 growth cones and nanostructures.Pier Nicola SergiIolanda Morana RoccasalvoIlaria TonazziniMarco CecchiniSilvestro Micera<h4>Background</h4>Recently, the effects of nanogratings have been investigated on PC12 with respect to cell polarity, neuronal differentiation, migration, maturation of focal adhesions and alignment of neurites.<h4>Methodology/principal findings</h4>A synergistic procedure was used to study the mechanism of alignment of PC12 neurites with respect to the main direction of nanogratings. Finite Element simulations were used to qualitatively assess the distribution of stresses at the interface between non-spread growth cones and filopodia, and to study their dependence on filopodial length and orientation. After modelling all adhesions under non-spread growth cone and filopodial protrusions, the values of local stress maxima resulted from the length of filopodia. Since the stress was assumed to be the main triggering cause leading to the increase and stabilization of filopodia, the position of the local maxima was directly related to the orientation of neurites. An analytic closed form equation was then written to quantitatively assess the average ridge width needed to achieve a given neuritic alignment (R(2) = 0.96), and the alignment course, when the ridge depth varied (R(2) = 0.97). A computational framework was implemented within an improved free Java environment (CX3D) and in silico simulations were carried out to reproduce and predict biological experiments. No significant differences were found between biological experiments and in silico simulations (alignment, p = 0.3571; tortuosity, p = 0.2236) with a standard level of confidence (95%).<h4>Conclusions/significance</h4>A mechanism involved in filopodial sensing of nanogratings is proposed and modelled through a synergistic use of FE models, theoretical equations and in silico simulations. This approach shows the importance of the neuritic terminal geometry, and the key role of the distribution of the adhesion constraints for the cell/substrate coupling process. Finally, the effects of the geometry of nanogratings were explicitly considered in cell/surface interactions thanks to the analytic framework presented in this work.https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/23936404/pdf/?tool=EBI
collection DOAJ
language English
format Article
sources DOAJ
author Pier Nicola Sergi
Iolanda Morana Roccasalvo
Ilaria Tonazzini
Marco Cecchini
Silvestro Micera
spellingShingle Pier Nicola Sergi
Iolanda Morana Roccasalvo
Ilaria Tonazzini
Marco Cecchini
Silvestro Micera
Cell guidance on nanogratings: a computational model of the interplay between PC12 growth cones and nanostructures.
PLoS ONE
author_facet Pier Nicola Sergi
Iolanda Morana Roccasalvo
Ilaria Tonazzini
Marco Cecchini
Silvestro Micera
author_sort Pier Nicola Sergi
title Cell guidance on nanogratings: a computational model of the interplay between PC12 growth cones and nanostructures.
title_short Cell guidance on nanogratings: a computational model of the interplay between PC12 growth cones and nanostructures.
title_full Cell guidance on nanogratings: a computational model of the interplay between PC12 growth cones and nanostructures.
title_fullStr Cell guidance on nanogratings: a computational model of the interplay between PC12 growth cones and nanostructures.
title_full_unstemmed Cell guidance on nanogratings: a computational model of the interplay between PC12 growth cones and nanostructures.
title_sort cell guidance on nanogratings: a computational model of the interplay between pc12 growth cones and nanostructures.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description <h4>Background</h4>Recently, the effects of nanogratings have been investigated on PC12 with respect to cell polarity, neuronal differentiation, migration, maturation of focal adhesions and alignment of neurites.<h4>Methodology/principal findings</h4>A synergistic procedure was used to study the mechanism of alignment of PC12 neurites with respect to the main direction of nanogratings. Finite Element simulations were used to qualitatively assess the distribution of stresses at the interface between non-spread growth cones and filopodia, and to study their dependence on filopodial length and orientation. After modelling all adhesions under non-spread growth cone and filopodial protrusions, the values of local stress maxima resulted from the length of filopodia. Since the stress was assumed to be the main triggering cause leading to the increase and stabilization of filopodia, the position of the local maxima was directly related to the orientation of neurites. An analytic closed form equation was then written to quantitatively assess the average ridge width needed to achieve a given neuritic alignment (R(2) = 0.96), and the alignment course, when the ridge depth varied (R(2) = 0.97). A computational framework was implemented within an improved free Java environment (CX3D) and in silico simulations were carried out to reproduce and predict biological experiments. No significant differences were found between biological experiments and in silico simulations (alignment, p = 0.3571; tortuosity, p = 0.2236) with a standard level of confidence (95%).<h4>Conclusions/significance</h4>A mechanism involved in filopodial sensing of nanogratings is proposed and modelled through a synergistic use of FE models, theoretical equations and in silico simulations. This approach shows the importance of the neuritic terminal geometry, and the key role of the distribution of the adhesion constraints for the cell/substrate coupling process. Finally, the effects of the geometry of nanogratings were explicitly considered in cell/surface interactions thanks to the analytic framework presented in this work.
url https://www.ncbi.nlm.nih.gov/pmc/articles/pmid/23936404/pdf/?tool=EBI
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