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1
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Invest Ophthalmol Vis Sci. 2011 Jun 1;52(6):3475-82. doi: 10.1167/iovs.10-6867.
2
Determining the mechanical properties of human corneal basement membranes with atomic force microscopy.用原子力显微镜测定人角膜基底膜的力学性能。
J Struct Biol. 2009 Jul;167(1):19-24. doi: 10.1016/j.jsb.2009.03.012. Epub 2009 Mar 31.
3
Full-field deformation of bovine cornea under constrained inflation conditions.约束膨胀条件下牛角膜的全场变形
Biomaterials. 2008 Oct;29(28):3896-904. doi: 10.1016/j.biomaterials.2008.06.011. Epub 2008 Jul 7.
4
Biomechanical properties of human and porcine corneas.人类和猪角膜的生物力学特性。
Exp Eye Res. 2008 May;86(5):783-90. doi: 10.1016/j.exer.2008.02.006. Epub 2008 Mar 4.
5
Assessment of the epithelium's contribution to corneal biomechanics.评估上皮对角膜生物力学的贡献。
Exp Eye Res. 2008 Feb;86(2):445-51. doi: 10.1016/j.exer.2007.12.002. Epub 2007 Dec 23.
6
Determination of the true intraocular pressure and modulus of elasticity of the human cornea in vivo.活体人眼角膜真实眼压及弹性模量的测定。
Bull Math Biol. 1999 May;61(3):551-72. doi: 10.1006/bulm.1999.0102.
7
Assessment of the biomechanical properties of the cornea with the ocular response analyzer in normal and keratoconic eyes.使用眼反应分析仪评估正常眼和圆锥角膜眼的角膜生物力学特性。
Invest Ophthalmol Vis Sci. 2007 Jul;48(7):3026-31. doi: 10.1167/iovs.04-0694.
8
Stress-controlled viscoelastic tensile response of bovine cornea.牛角膜的应力控制粘弹性拉伸响应
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9
Changes in corneal biomechanics and intraocular pressure following LASIK using static, dynamic, and noncontact tonometry.使用静态、动态和非接触眼压测量法进行准分子激光原位角膜磨镶术后角膜生物力学和眼压的变化。
Am J Ophthalmol. 2007 Jan;143(1):39-47. doi: 10.1016/j.ajo.2006.09.036. Epub 2006 Oct 20.
10
Corneal hysteresis and intraocular pressure measurement in children using the reichert ocular response analyzer.使用瑞特眼反应分析仪测量儿童的角膜滞后和眼压
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机械干涉成像技术在角膜蠕变建模中的应用。

Mechanical interferometry imaging for creep modeling of the cornea.

机构信息

Department of Ophthalmology, University of California, Los Angeles, California, USA.

出版信息

Invest Ophthalmol Vis Sci. 2011 Oct 28;52(11):8420-4. doi: 10.1167/iovs.11-7911. Print 2011 Oct.

DOI:10.1167/iovs.11-7911
PMID:21969299
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3388749/
Abstract

PURPOSE

A novel nanoindentation technique was used to biomechanically characterize each of three main layers of the cornea by using Hertzian viscoelastic formulation of creep, the deformation resulting from sustained-force application.

METHODS

The nanoindentation method known as mechanical interferometry imaging (MII) with <1-nm displacement precision was used to observe indentation of bovine corneal epithelium, endothelium, and stroma by a spherical ferrous probe in a calibrated magnetic field. For each specimen, creep testing was performed using two different forces for 200 seconds. Measurements for single force were used to build a quantitative Hertzian model that was then used to predict creep behavior for another imposed force.

RESULTS

For all three layers, displacement measurements were highly repeatable and were well predicted by Hertzian models. Although short- and long-term stiffnesses of the endothelium were highest of the three layers at 339.2 and 20.2 kPa, respectively, both stromal stiffnesses were lowest at 100.4 and 3.6 kPa, respectively. Stiffnesses for the epithelium were intermediate at 264.6 and 12.2 kPa, respectively.

CONCLUSIONS

Precise, repeatable measurements of corneal creep behavior can be conveniently obtained using MII at mechanical scale as small as one cell thickness. When interpreted in analytical context of Hertzian viscoelasticity, MII technique proved to be a powerful tool for biomechanical characterization of time-dependent biomechanics of corneal regions.

摘要

目的

采用新型纳米压痕技术,通过对持续力作用下产生的变形进行赫芝粘弹性蠕变公式的拟合,对角膜的三个主要层进行生物力学特性分析。

方法

采用机械干涉成像(MII)法进行纳米压痕实验,该方法的位移精度可达<1nm,在经过校准的磁场中利用铁制球形探头对牛眼角膜上皮、内皮和基质进行压痕实验。对每个标本进行两次不同力值的 200 秒蠕变测试。单次力值测量用于构建定量赫兹模型,然后用于预测另一外加力的蠕变行为。

结果

对于所有三个层,位移测量具有高度可重复性,并很好地符合赫兹模型预测。尽管内皮的短期和长期硬度最高,分别为 339.2kPa 和 20.2kPa,但基质的硬度最低,分别为 100.4kPa 和 3.6kPa。上皮的硬度分别为 264.6kPa 和 12.2kPa,处于中间水平。

结论

MII 可在机械尺度小至单个细胞厚度的情况下,方便地获得角膜蠕变行为的精确、可重复测量。当以赫芝粘弹性力学的分析角度解释时,MII 技术被证明是用于角膜区域时变生物力学特性生物力学特性分析的强大工具。