生理代表性负荷下角膜生物力学的干涉离体研究,强调角膜缘在压力补偿中的作用。

Eye and vision (London, England) Pub Date : 2020-08-13 eCollection Date: 2020-01-01 DOI:10.1186/s40662-020-00207-1
Abby Wilson, John Jones, John R Tyrer, John Marshall
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引用次数: 13

摘要

背景:角膜的力学特性是复杂的,而且是区域性的。本文采用一种新颖的方法研究了在典型的眼内压(IOP)波动的生理范围内,静水压下角膜的生物力学响应,从而增加了对临床相关角膜生物力学特性及其对角膜屈光特性的贡献的理解。方法:采用位移散斑干涉法(DSPI)测量了40只猪和6个人角膜-巩膜标本在压力变化时的总表面位移,从16.5 mmHg的基线变化到1 mmHg。所有标本均安装在改良的人工前房(AAC)中,并进行流体静力加载。通过比较不同区域的位移,确定了响应加载的高应变区域。结果:角膜表面对载荷的响应性质表现出高度的区域地形差异。力学性能表现出不对称,边缘和边缘前区域的变形分别主导了这些响应,超过90% (N-T)和60% (S-I)的最大位移发生在这些区域,表明高应变。相比之下,中央角膜的曲率保持相对不变,只是在位置上平移。结论:角膜缘和角膜缘前区似乎是吸收小压力波动的基础,从而使角膜中央的曲率保持相对不变。这一区域的不同力学性质可能对角膜手术和角膜交联的应用具有重要意义,值得进一步研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

An interferometric ex vivo study of corneal biomechanics under physiologically representative loading, highlighting the role of the limbus in pressure compensation.

An interferometric ex vivo study of corneal biomechanics under physiologically representative loading, highlighting the role of the limbus in pressure compensation.

An interferometric ex vivo study of corneal biomechanics under physiologically representative loading, highlighting the role of the limbus in pressure compensation.

An interferometric ex vivo study of corneal biomechanics under physiologically representative loading, highlighting the role of the limbus in pressure compensation.

Background: The mechanical properties of the cornea are complex and regionally variable. This paper uses an original method to investigate the biomechanics of the cornea in response to hydrostatic loading over the typical physiological range of intra-ocular pressure (IOP) fluctuations thereby increasing understanding of clinically relevant corneal biomechanical properties and their contributions to the refractive properties of the cornea.

Methods: Displacement speckle pattern interferometry (DSPI) was used to measure the total surface displacement of 40 porcine and 6 human corneal-scleral specimens in response to pressure variations up to 1 mmHg from a baseline of 16.5 mmHg. All specimens were mounted in a modified artificial anterior chamber (AAC) and loaded hydrostatically. Areas of high strain in response to loading were identified by comparing the displacements across different regions.

Results: The nature of the response of the corneal surface to loading demonstrated high regional topographic variation. Mechanical properties were shown to be asymmetrical, and deformation of the limbal and pre-limbal regions dominated these responses respectively with over 90% (N-T) and 60% (S-I) of the total maximum displacement occurring in these regions indicating high-strain. In contrast, the curvature of the central cornea remained relatively unchanged merely translating in position.

Conclusions: The limbal and pre-limbal regions of the cornea appear to be fundamental to the absorption of small pressure fluctuations facilitating the curvature of the central cornea to remain relatively unchanged. The differential mechanical properties of this region could have important implications for the application of corneal surgery and corneal crosslinking, warranting further investigation.

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