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Delineating Corneal Elastic Anisotropy in a Porcine Model Using Noncontact OCT Elastography and Ex Vivo Mechanical Tests

PURPOSE: To compare noncontact acoustic microtapping (AμT) OCT elastography (OCE) with destructive mechanical tests to confirm corneal elastic anisotropy. DESIGN: Ex vivo laboratory study with noncontact AμT-OCE followed by mechanical rheometry and extensometry. PARTICIPANTS: Inflated cornea of whol...

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Autores principales: Kirby, Mitchell A., Pitre, John J., Liou, Hong-Cin, Li, David S., Wang, Ruikang K., Pelivanov, Ivan, O’Donnell, Matthew, Shen, Tueng T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9560544/
https://www.ncbi.nlm.nih.gov/pubmed/36246948
http://dx.doi.org/10.1016/j.xops.2021.100058
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author Kirby, Mitchell A.
Pitre, John J.
Liou, Hong-Cin
Li, David S.
Wang, Ruikang K.
Pelivanov, Ivan
O’Donnell, Matthew
Shen, Tueng T.
author_facet Kirby, Mitchell A.
Pitre, John J.
Liou, Hong-Cin
Li, David S.
Wang, Ruikang K.
Pelivanov, Ivan
O’Donnell, Matthew
Shen, Tueng T.
author_sort Kirby, Mitchell A.
collection PubMed
description PURPOSE: To compare noncontact acoustic microtapping (AμT) OCT elastography (OCE) with destructive mechanical tests to confirm corneal elastic anisotropy. DESIGN: Ex vivo laboratory study with noncontact AμT-OCE followed by mechanical rheometry and extensometry. PARTICIPANTS: Inflated cornea of whole-globe porcine eyes (n = 9). METHODS: A noncontact AμT transducer was used to launch propagating mechanical waves in the cornea that were imaged with phase-sensitive OCT at physiologically relevant controlled pressures. Reconstruction of both Young’s modulus (E) and out-of-plane shear modulus (G) in the cornea from experimental data was performed using a nearly incompressible transversely isotropic (NITI) medium material model assuming spatial isotropy of corneal tensile properties. Corneal samples were excised and parallel plate rheometry was performed to measure shear modulus, G. Corneal samples were then subjected to strip extensometry to measure the Young’s modulus, E. MAIN OUTCOME MEASURES: Strong corneal anisotropy was confirmed with both AμT-OCE and mechanical tests, with the Young’s (E) and shear (G) moduli differing by more than an order of magnitude. These results show that AμT-OCE can quantify both moduli simultaneously with a noncontact, noninvasive, clinically translatable technique. RESULTS: Mean of the OCE measured moduli were E = 12 ± 5 MPa and G = 31 ± 11 kPa at 5 mmHg and E = 20 ± 9 MPa and G = 61 ± 29 kPa at 20 mmHg. Tensile testing yielded a mean Young’s modulus of 1 MPa – 20 MPa over a strain range of 1% to 7%. Shear storage and loss modulus (G′/G′′) measured with rheometry was approximately 82/13 ± 12/4 kPa at 0.2 Hz and 133/29 ± 16/3 kPa at 16 Hz (0.1% strain). CONCLUSIONS: The cornea is confirmed to be a strongly anisotropic elastic material that cannot be characterized with a single elastic modulus. The NITI model is the simplest one that accounts for the cornea’s incompressibility and in-plane distribution of lamellae. AμT-OCE has been shown to be the only reported noncontact, noninvasive method to measure both elastic moduli. Submillimeter spatial resolution and near real-time operation can be achieved. Quantifying corneal elasticity in vivo will enable significant innovation in ophthalmology, helping to develop personalized biomechanical models of the eye that can predict response to ophthalmic interventions.
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spelling pubmed-95605442022-10-14 Delineating Corneal Elastic Anisotropy in a Porcine Model Using Noncontact OCT Elastography and Ex Vivo Mechanical Tests Kirby, Mitchell A. Pitre, John J. Liou, Hong-Cin Li, David S. Wang, Ruikang K. Pelivanov, Ivan O’Donnell, Matthew Shen, Tueng T. Ophthalmol Sci Original Article PURPOSE: To compare noncontact acoustic microtapping (AμT) OCT elastography (OCE) with destructive mechanical tests to confirm corneal elastic anisotropy. DESIGN: Ex vivo laboratory study with noncontact AμT-OCE followed by mechanical rheometry and extensometry. PARTICIPANTS: Inflated cornea of whole-globe porcine eyes (n = 9). METHODS: A noncontact AμT transducer was used to launch propagating mechanical waves in the cornea that were imaged with phase-sensitive OCT at physiologically relevant controlled pressures. Reconstruction of both Young’s modulus (E) and out-of-plane shear modulus (G) in the cornea from experimental data was performed using a nearly incompressible transversely isotropic (NITI) medium material model assuming spatial isotropy of corneal tensile properties. Corneal samples were excised and parallel plate rheometry was performed to measure shear modulus, G. Corneal samples were then subjected to strip extensometry to measure the Young’s modulus, E. MAIN OUTCOME MEASURES: Strong corneal anisotropy was confirmed with both AμT-OCE and mechanical tests, with the Young’s (E) and shear (G) moduli differing by more than an order of magnitude. These results show that AμT-OCE can quantify both moduli simultaneously with a noncontact, noninvasive, clinically translatable technique. RESULTS: Mean of the OCE measured moduli were E = 12 ± 5 MPa and G = 31 ± 11 kPa at 5 mmHg and E = 20 ± 9 MPa and G = 61 ± 29 kPa at 20 mmHg. Tensile testing yielded a mean Young’s modulus of 1 MPa – 20 MPa over a strain range of 1% to 7%. Shear storage and loss modulus (G′/G′′) measured with rheometry was approximately 82/13 ± 12/4 kPa at 0.2 Hz and 133/29 ± 16/3 kPa at 16 Hz (0.1% strain). CONCLUSIONS: The cornea is confirmed to be a strongly anisotropic elastic material that cannot be characterized with a single elastic modulus. The NITI model is the simplest one that accounts for the cornea’s incompressibility and in-plane distribution of lamellae. AμT-OCE has been shown to be the only reported noncontact, noninvasive method to measure both elastic moduli. Submillimeter spatial resolution and near real-time operation can be achieved. Quantifying corneal elasticity in vivo will enable significant innovation in ophthalmology, helping to develop personalized biomechanical models of the eye that can predict response to ophthalmic interventions. Elsevier 2021-09-22 /pmc/articles/PMC9560544/ /pubmed/36246948 http://dx.doi.org/10.1016/j.xops.2021.100058 Text en © 2021 by the American Academy of Ophthalmology. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Kirby, Mitchell A.
Pitre, John J.
Liou, Hong-Cin
Li, David S.
Wang, Ruikang K.
Pelivanov, Ivan
O’Donnell, Matthew
Shen, Tueng T.
Delineating Corneal Elastic Anisotropy in a Porcine Model Using Noncontact OCT Elastography and Ex Vivo Mechanical Tests
title Delineating Corneal Elastic Anisotropy in a Porcine Model Using Noncontact OCT Elastography and Ex Vivo Mechanical Tests
title_full Delineating Corneal Elastic Anisotropy in a Porcine Model Using Noncontact OCT Elastography and Ex Vivo Mechanical Tests
title_fullStr Delineating Corneal Elastic Anisotropy in a Porcine Model Using Noncontact OCT Elastography and Ex Vivo Mechanical Tests
title_full_unstemmed Delineating Corneal Elastic Anisotropy in a Porcine Model Using Noncontact OCT Elastography and Ex Vivo Mechanical Tests
title_short Delineating Corneal Elastic Anisotropy in a Porcine Model Using Noncontact OCT Elastography and Ex Vivo Mechanical Tests
title_sort delineating corneal elastic anisotropy in a porcine model using noncontact oct elastography and ex vivo mechanical tests
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9560544/
https://www.ncbi.nlm.nih.gov/pubmed/36246948
http://dx.doi.org/10.1016/j.xops.2021.100058
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