Literature DB >> 34274532

Assessment of the viscoelastic mechanical properties of the porcine optic nerve head using micromechanical testing and finite element modeling.

Babak N Safa1, A Thomas Read1, C Ross Ethier2.   

Abstract

Optic nerve head (ONH) biomechanics is centrally involved in the pathogenesis of glaucoma, a blinding ocular condition often characterized by elevation and fluctuation of the intraocular pressure and resulting loads on the ONH. Further, tissue viscoelasticity is expected to strongly influence the mechanical response of the ONH to mechanical loading, yet the viscoelastic mechanical properties of the ONH remain unknown. To determine these properties, we conducted micromechanical testing on porcine ONH tissue samples, coupled with finite element modeling based on a mixture model consisting of a biphasic material with a viscoelastic solid matrix. Our results provide a detailed description of the viscoelastic properties of the porcine ONH at each of its four anatomical quadrants (i.e., nasal, superior, temporal, and inferior). We showed that the ONH's viscoelastic mechanical response can be explained by a dual mechanism of fluid flow and solid matrix viscoelasticity, as is common in other soft tissues. We obtained porcine ONH properties as follows: matrix Young's modulus E=1.895[1.056,2.391] kPa (median [min., max.]), Poisson's ratio ν=0.142[0.060,0.312], kinetic time-constant τ=214[89,921] sec, and hydraulic permeability k=3.854×10-1[3.457×10-2,9.994×10-1] mm4/(N.sec). These values can be used to design and fabricate physiologically appropriate ex vivo test environments (e.g., 3D cell culture) to further understand glaucoma pathophysiology. STATEMENT OF SIGNIFICANCE: Optic nerve head (ONH) biomechanics is an important aspect of the pathogenesis of glaucoma, the leading cause of irreversible blindness. The ONH experiences time-varying loads, yet the viscoelastic behavior of this tissue has not been characterized. Here, we measure the time-dependent response of the ONH in porcine eyes and use mechanical modeling to provide time-dependent mechanical properties of the ONH. This information allows us to identify time-varying stimuli in vivo which have timescales matching the characteristic response times of the ONH, and can also be used to design and fabricate ex vivo 3D cultures to study glaucoma pathophysiology in a physiologically relevant environment, enabling the discovery of new generations of glaucoma medications focusing on neuroprotection.
Copyright © 2021. Published by Elsevier Ltd.

Entities:  

Keywords:  Glaucoma; Incremental creep; Mechanical stress; Optic nerve head; Porcine eye; Viscoelasticity

Mesh:

Year:  2021        PMID: 34274532      PMCID: PMC8542610          DOI: 10.1016/j.actbio.2021.07.022

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   10.633


  34 in total

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4.  A Reactive Inelasticity Theoretical Framework for Modeling Viscoelasticity, Plastic Deformation, and Damage in Soft Tissue.

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5.  Quantitative morphologic and functional evaluation of the optic nerve head in chronic open-angle glaucoma.

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7.  A porohyperelastic finite element model of the eye: the influence of stiffness and permeability on intraocular pressure and optic nerve head biomechanics.

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8.  Regional differences in the structure of the lamina cribrosa and their relation to glaucomatous optic nerve damage.

Authors:  H A Quigley; E M Addicks
Journal:  Arch Ophthalmol       Date:  1981-01

9.  Collagen Architecture of the Posterior Pole: High-Resolution Wide Field of View Visualization and Analysis Using Polarized Light Microscopy.

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10.  Radial and Circumferential Collagen Fibers Are a Feature of the Peripapillary Sclera of Human, Monkey, Pig, Cow, Goat, and Sheep.

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  3 in total

Review 1.  Glaucoma and biomechanics.

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Review 2.  Biomechanical analysis of ocular diseases and its in vitro study methods.

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Journal:  Biomed Eng Online       Date:  2022-07-23       Impact factor: 3.903

3.  Electrophysiological, biomechanical, and finite element analysis study of sacral nerve injury caused by sacral fracture.

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  3 in total

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