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Dynamic Optical Coherence Elastography of the Anterior Eye: Understanding the Biomechanics of the Limbus

PURPOSE: Currently, the biomechanical properties of the corneo-scleral limbus when the eye-globe deforms are largely unknown. The purpose of this study is to evaluate changes in elasticity of the cornea, sclera, and limbus when subjected to different intraocular pressures (IOP) using wave-based opti...

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Autores principales: Zvietcovich, Fernando, Nair, Achuth, Singh, Manmohan, Aglyamov, Salavat R., Twa, Michael D., Larin, Kirill V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Association for Research in Vision and Ophthalmology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7645208/
https://www.ncbi.nlm.nih.gov/pubmed/33141893
http://dx.doi.org/10.1167/iovs.61.13.7
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author Zvietcovich, Fernando
Nair, Achuth
Singh, Manmohan
Aglyamov, Salavat R.
Twa, Michael D.
Larin, Kirill V.
author_facet Zvietcovich, Fernando
Nair, Achuth
Singh, Manmohan
Aglyamov, Salavat R.
Twa, Michael D.
Larin, Kirill V.
author_sort Zvietcovich, Fernando
collection PubMed
description PURPOSE: Currently, the biomechanical properties of the corneo-scleral limbus when the eye-globe deforms are largely unknown. The purpose of this study is to evaluate changes in elasticity of the cornea, sclera, and limbus when subjected to different intraocular pressures (IOP) using wave-based optical coherence elastography (OCE). Special attention was given to the elasticity changes of the limbal region with respect to the elasticity variations in the neighboring corneal and scleral regions. METHODS: Continuous harmonic elastic waves (800 Hz) were mechanically induced in the sclera near the corneo-sclera limbus of in situ porcine eye-globes (n = 8). Wave propagation was imaged using a phase-sensitive optical coherence tomography system (PhS-OCT). The eyes were subjected to five different IOP-levels (10, 15, 20, 30, and 40 mm Hg), and spatially distributed propagation velocities were calculated along corneal, limbal, and scleral regions. Finite element analysis (FEA) of the same regions under the same excitation conditions were conducted for further validation of results. RESULTS: FEA demonstrated that the stiffness of the heterogeneous cornea-limbus-sclera transition can be characterized by phase velocity measurements of the elastic waves produced at 800 Hz in the anterior eye. Experimental results revealed that the wave speed in the limbus (c(L) = 6.5 m/s) is between the cornea (c(c) = 2.9 m/s) and sclera (c(s) = 10.0 m/s) at a physiological IOP level (15 mm Hg) and rapidly increases as the IOP level is increased, even surpassing the wave speed in the sclera. Finally, the change in elastic wave speed in the limbus (Δc(L)∼18.5 m/s) was greater than in the cornea (Δc(c) ∼12.6 m/s) and sclera (Δc(s)∼8.1 m/s) for the same change in IOP. CONCLUSIONS: We demonstrated that wave-based OCE can be utilized to assess limbus biomechanical properties. Moreover, experimental evidence showed that the corneo-scleral limbus is highly nonlinear compared to the cornea and sclera when the eye-globe is deformed by an increase of IOP. This may suggest that the limbus has enough structural flexibility to stabilize anterior eye shape during IOP changes.
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spelling pubmed-76452082020-11-15 Dynamic Optical Coherence Elastography of the Anterior Eye: Understanding the Biomechanics of the Limbus Zvietcovich, Fernando Nair, Achuth Singh, Manmohan Aglyamov, Salavat R. Twa, Michael D. Larin, Kirill V. Invest Ophthalmol Vis Sci Cornea PURPOSE: Currently, the biomechanical properties of the corneo-scleral limbus when the eye-globe deforms are largely unknown. The purpose of this study is to evaluate changes in elasticity of the cornea, sclera, and limbus when subjected to different intraocular pressures (IOP) using wave-based optical coherence elastography (OCE). Special attention was given to the elasticity changes of the limbal region with respect to the elasticity variations in the neighboring corneal and scleral regions. METHODS: Continuous harmonic elastic waves (800 Hz) were mechanically induced in the sclera near the corneo-sclera limbus of in situ porcine eye-globes (n = 8). Wave propagation was imaged using a phase-sensitive optical coherence tomography system (PhS-OCT). The eyes were subjected to five different IOP-levels (10, 15, 20, 30, and 40 mm Hg), and spatially distributed propagation velocities were calculated along corneal, limbal, and scleral regions. Finite element analysis (FEA) of the same regions under the same excitation conditions were conducted for further validation of results. RESULTS: FEA demonstrated that the stiffness of the heterogeneous cornea-limbus-sclera transition can be characterized by phase velocity measurements of the elastic waves produced at 800 Hz in the anterior eye. Experimental results revealed that the wave speed in the limbus (c(L) = 6.5 m/s) is between the cornea (c(c) = 2.9 m/s) and sclera (c(s) = 10.0 m/s) at a physiological IOP level (15 mm Hg) and rapidly increases as the IOP level is increased, even surpassing the wave speed in the sclera. Finally, the change in elastic wave speed in the limbus (Δc(L)∼18.5 m/s) was greater than in the cornea (Δc(c) ∼12.6 m/s) and sclera (Δc(s)∼8.1 m/s) for the same change in IOP. CONCLUSIONS: We demonstrated that wave-based OCE can be utilized to assess limbus biomechanical properties. Moreover, experimental evidence showed that the corneo-scleral limbus is highly nonlinear compared to the cornea and sclera when the eye-globe is deformed by an increase of IOP. This may suggest that the limbus has enough structural flexibility to stabilize anterior eye shape during IOP changes. The Association for Research in Vision and Ophthalmology 2020-11-03 /pmc/articles/PMC7645208/ /pubmed/33141893 http://dx.doi.org/10.1167/iovs.61.13.7 Text en Copyright 2020 The Authors http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License.
spellingShingle Cornea
Zvietcovich, Fernando
Nair, Achuth
Singh, Manmohan
Aglyamov, Salavat R.
Twa, Michael D.
Larin, Kirill V.
Dynamic Optical Coherence Elastography of the Anterior Eye: Understanding the Biomechanics of the Limbus
title Dynamic Optical Coherence Elastography of the Anterior Eye: Understanding the Biomechanics of the Limbus
title_full Dynamic Optical Coherence Elastography of the Anterior Eye: Understanding the Biomechanics of the Limbus
title_fullStr Dynamic Optical Coherence Elastography of the Anterior Eye: Understanding the Biomechanics of the Limbus
title_full_unstemmed Dynamic Optical Coherence Elastography of the Anterior Eye: Understanding the Biomechanics of the Limbus
title_short Dynamic Optical Coherence Elastography of the Anterior Eye: Understanding the Biomechanics of the Limbus
title_sort dynamic optical coherence elastography of the anterior eye: understanding the biomechanics of the limbus
topic Cornea
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7645208/
https://www.ncbi.nlm.nih.gov/pubmed/33141893
http://dx.doi.org/10.1167/iovs.61.13.7
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