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应力-应变指数图:一种表示角膜材料硬度的新方法。

Stress-Strain Index Map: A New Way to Represent Corneal Material Stiffness.

作者信息

Zhang Haixia, Eliasy Ashkan, Lopes Bernardo, Abass Ahmed, Vinciguerra Riccardo, Vinciguerra Paolo, Ambrósio Renato, Roberts Cynthia J, Elsheikh Ahmed

机构信息

School of Engineering, University of Liverpool, Liverpool, United Kingdom.

School of Biomedical Engineering, Beijing Key Laboratory of Fundamental Research on Biomechanics in Clinical Application, Capital Medical University, Beijing, China.

出版信息

Front Bioeng Biotechnol. 2021 Mar 11;9:640434. doi: 10.3389/fbioe.2021.640434. eCollection 2021.

Abstract

PURPOSE

To introduce a new method to map the mechanical stiffness of healthy and keratoconic corneas.

METHODS

Numerical modeling based on the finite element method was used to carry out inverse analysis of simulated healthy and keratoconic corneas to determine the regional variation of mechanical stiffness across the corneal surface based on established trends in collagen fibril distribution. The Stress-Strain Index (SSI), developed and validated in an earlier study and presented as a parameter that can estimate the overall stress-strain behavior of corneal tissue, was adopted in this research as a measure of corneal stiffness. The regional variation of SSI across the corneal surface was estimated using inverse analysis while referring to the common features of collagen fibrils' distribution obtained from earlier x-ray scattering studies. Additionally, for keratoconic corneas, a method relating keratoconic cone features and cornea's refractive power to the reduction in collagen fibril density inside the cone was implemented in the development of SSI maps. In addition to the simulated cases, the study also included two keratoconus cases, for which SSI maps were developed.

RESULTS

SSI values varied slightly across corneal surface in the simulated healthy eyes. In contrast, both simulated and clinical keratoconic corneas demonstrated substantial reductions in SSI values inside the cone. These SSI reductions depended on the extent of the disease and increased with more considerable simulated losses in fibril density in the cone area. SSI values and their regional variation showed little change with changes in IOP, corneal thickness, and curvature.

CONCLUSION

SSI maps provide an estimation of the regional variation of biomechanical stiffness across the corneal surface. The maps could be particularly useful in keratoconic corneas, demonstrating the dependence of corneal biomechanical behavior on the tissue's microstructure and offering a tool to fundamentally understand the mechanics of keratoconus progression in individual patients.

摘要

目的

介绍一种绘制健康角膜和圆锥角膜机械刚度图谱的新方法。

方法

基于有限元法的数值模拟用于对模拟的健康角膜和圆锥角膜进行反分析,以根据胶原纤维分布的既定趋势确定角膜表面机械刚度的区域变化。本研究采用在早期研究中开发并验证的应力应变指数(SSI)作为角膜刚度的度量,该指数可作为估计角膜组织整体应力应变行为的参数。在参考早期X射线散射研究获得的胶原纤维分布的共同特征的同时,使用反分析估计角膜表面SSI的区域变化。此外,对于圆锥角膜,在SSI图谱的开发中实施了一种将圆锥角膜圆锥特征和角膜屈光力与圆锥内部胶原纤维密度降低相关联的方法。除了模拟病例外,该研究还包括两个圆锥角膜病例,并为其绘制了SSI图谱。

结果

在模拟的健康眼中,角膜表面的SSI值略有变化。相比之下,模拟和临床圆锥角膜在圆锥内部的SSI值均显著降低。这些SSI降低取决于疾病的程度,并随着圆锥区域中纤维密度的模拟损失增加而增加。SSI值及其区域变化随眼压、角膜厚度和曲率的变化几乎没有变化。

结论

SSI图谱提供了角膜表面生物力学刚度区域变化的估计。这些图谱在圆锥角膜中可能特别有用,证明角膜生物力学行为对组织微观结构的依赖性,并提供一种从根本上理解个体患者圆锥角膜进展力学的工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/56ed/7991572/3fddde75fe67/fbioe-09-640434-g001.jpg

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