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Coupled Biomechanical Response of the Cornea Assessed by Non-Contact Tonometry. A Simulation Study

The mechanical response of the cornea subjected to a non-contact air-jet tonometry diagnostic test represents an interplay between its geometry, the corneal material behavior and the loading. The objective is to study this interplay to better understand and interpret the results obtained with a non-...

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Autores principales: Ariza-Gracia, Miguel Á., Zurita, Jesús F., Piñero, David P., Rodriguez-Matas, José F., Calvo, Begoña
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4364121/
https://www.ncbi.nlm.nih.gov/pubmed/25780915
http://dx.doi.org/10.1371/journal.pone.0121486
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author Ariza-Gracia, Miguel Á.
Zurita, Jesús F.
Piñero, David P.
Rodriguez-Matas, José F.
Calvo, Begoña
author_facet Ariza-Gracia, Miguel Á.
Zurita, Jesús F.
Piñero, David P.
Rodriguez-Matas, José F.
Calvo, Begoña
author_sort Ariza-Gracia, Miguel Á.
collection PubMed
description The mechanical response of the cornea subjected to a non-contact air-jet tonometry diagnostic test represents an interplay between its geometry, the corneal material behavior and the loading. The objective is to study this interplay to better understand and interpret the results obtained with a non-contact tonometry test. A patient-specific finite element model of a healthy eye, accounting for the load free configuration, was used. The corneal tissue was modeled as an anisotropic hyperelastic material with two preferential directions. Three different sets of parameters within the human experimental range obtained from inflation tests were considered. The influence of the IOP was studied by considering four pressure levels (10–28 mmHg) whereas the influence of corneal thickness was studied by inducing a uniform variation (300–600 microns). A Computer Fluid Dynamics (CFD) air-jet simulation determined pressure loading exerted on the anterior corneal surface. The maximum apex displacement showed a linear variation with IOP for all materials examined. On the contrary, the maximum apex displacement followed a cubic relation with corneal thickness. In addition, a significant sensitivity of the apical displacement to the corneal stiffness was also obtained. Explanation to this behavior was found in the fact that the cornea experiences bending when subjected to an air-puff loading, causing the anterior surface to work in compression whereas the posterior surface works in tension. Hence, collagen fibers located at the anterior surface do not contribute to load bearing. Non-contact tonometry devices give useful information that could be misleading since the corneal deformation is the result of the interaction between the mechanical properties, IOP, and geometry. Therefore, a non-contact tonometry test is not sufficient to evaluate their individual contribution and a complete in-vivo characterization would require more than one test to independently determine the membrane and bending corneal behavior.
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spelling pubmed-43641212015-03-23 Coupled Biomechanical Response of the Cornea Assessed by Non-Contact Tonometry. A Simulation Study Ariza-Gracia, Miguel Á. Zurita, Jesús F. Piñero, David P. Rodriguez-Matas, José F. Calvo, Begoña PLoS One Research Article The mechanical response of the cornea subjected to a non-contact air-jet tonometry diagnostic test represents an interplay between its geometry, the corneal material behavior and the loading. The objective is to study this interplay to better understand and interpret the results obtained with a non-contact tonometry test. A patient-specific finite element model of a healthy eye, accounting for the load free configuration, was used. The corneal tissue was modeled as an anisotropic hyperelastic material with two preferential directions. Three different sets of parameters within the human experimental range obtained from inflation tests were considered. The influence of the IOP was studied by considering four pressure levels (10–28 mmHg) whereas the influence of corneal thickness was studied by inducing a uniform variation (300–600 microns). A Computer Fluid Dynamics (CFD) air-jet simulation determined pressure loading exerted on the anterior corneal surface. The maximum apex displacement showed a linear variation with IOP for all materials examined. On the contrary, the maximum apex displacement followed a cubic relation with corneal thickness. In addition, a significant sensitivity of the apical displacement to the corneal stiffness was also obtained. Explanation to this behavior was found in the fact that the cornea experiences bending when subjected to an air-puff loading, causing the anterior surface to work in compression whereas the posterior surface works in tension. Hence, collagen fibers located at the anterior surface do not contribute to load bearing. Non-contact tonometry devices give useful information that could be misleading since the corneal deformation is the result of the interaction between the mechanical properties, IOP, and geometry. Therefore, a non-contact tonometry test is not sufficient to evaluate their individual contribution and a complete in-vivo characterization would require more than one test to independently determine the membrane and bending corneal behavior. Public Library of Science 2015-03-17 /pmc/articles/PMC4364121/ /pubmed/25780915 http://dx.doi.org/10.1371/journal.pone.0121486 Text en © 2015 Ariza-Gracia et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Ariza-Gracia, Miguel Á.
Zurita, Jesús F.
Piñero, David P.
Rodriguez-Matas, José F.
Calvo, Begoña
Coupled Biomechanical Response of the Cornea Assessed by Non-Contact Tonometry. A Simulation Study
title Coupled Biomechanical Response of the Cornea Assessed by Non-Contact Tonometry. A Simulation Study
title_full Coupled Biomechanical Response of the Cornea Assessed by Non-Contact Tonometry. A Simulation Study
title_fullStr Coupled Biomechanical Response of the Cornea Assessed by Non-Contact Tonometry. A Simulation Study
title_full_unstemmed Coupled Biomechanical Response of the Cornea Assessed by Non-Contact Tonometry. A Simulation Study
title_short Coupled Biomechanical Response of the Cornea Assessed by Non-Contact Tonometry. A Simulation Study
title_sort coupled biomechanical response of the cornea assessed by non-contact tonometry. a simulation study
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4364121/
https://www.ncbi.nlm.nih.gov/pubmed/25780915
http://dx.doi.org/10.1371/journal.pone.0121486
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