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圆锥角膜的生物力学:两项数值研究。

Biomechanics of keratoconus: Two numerical studies.

机构信息

CNRS IRL 2958, GT-CNRS, GeorgiaTech Lorraine, Metz, France.

Department of Nanomaterials, Electronics, and Living Systems, Institut Jean Lamour, Nancy, France.

出版信息

PLoS One. 2023 Feb 2;18(2):e0278455. doi: 10.1371/journal.pone.0278455. eCollection 2023.

Abstract

BACKGROUND

The steep cornea in keratoconus can greatly impair eyesight. The etiology of keratoconus remains unclear but early injury that weakens the corneal stromal architecture has been implicated. To explore keratoconus mechanics, we conducted two numerical simulation studies.

METHODS

A finite-element model describing the five corneal layers and the heterogeneous mechanical behaviors of the ground substance and lamellar collagen-fiber architecture in the anterior and posterior stroma was developed using the Holzapfel-Gasser-Ogden constitutive model. The geometry was from a healthy subject. Its stroma was divided into anterior, middle, and posterior layers to assess the effect of changing regional mechanical parameters on corneal displacement and maximum principal stress under intraocular pressure. Specifically, the effect of softening an inferocentral corneal button, the collagen-based tissues throughout the whole cornea, or specific stromal layers in the button was examined. The effect of simply disorganizing the orthogonally-oriented posterior stromal fibers in the button was also assessed. The healthy cornea was also subjected to eye rubbing-like loading to identify the corneal layer(s) that experienced the most tensional stress.

RESULTS

Conical deformation and corneal thinning emerged when the corneal button or the mid-posterior stroma of the button underwent gradual softening or when the collagen fibers in the mid-posterior stroma of the button were dispersed. Softening the anterior layers of the button or the whole cornea did not evoke conical deformation. Button softening greatly increased and disrupted the stress on Bowman's membrane while mid-posterior stromal softening increased stress in the anterior layers. Eye rubbing profoundly stressed the deep posterior stroma while other layers were negligibly affected.

DISCUSSION

These observations suggest that keratoconus could be initiated, at least partly, by mechanical instability/damage in the mid-posterior stroma that then imposes stress on the anterior layers. This may explain why subclinical keratoconus is marked by posterior but not anterior elevation on videokeratoscopy.

摘要

背景

圆锥角膜的陡峭角膜会大大损害视力。圆锥角膜的病因尚不清楚,但已涉及削弱角膜基质结构的早期损伤。为了探索圆锥角膜的力学特性,我们进行了两项数值模拟研究。

方法

使用 Holzapfel-Gasser-Ogden 本构模型,开发了一个描述五个角膜层和基质的各向异性力学行为以及前、后基质层中层状胶原纤维结构的有限元模型。该几何形状来自健康受试者。其基质分为前、中、后三层,以评估改变局部力学参数对眼压下角膜位移和最大主应力的影响。具体来说,研究了软化中下部角膜瓣、整个角膜的胶原组织或瓣内特定基质层的效果,以及简单打乱瓣内正交排列的后基质纤维的效果。还对健康角膜进行了类似揉眼的加载,以确定经历最大张应力的角膜层。

结果

当角膜瓣或瓣中后基质逐渐软化,或瓣中后基质的胶原纤维分散时,会出现锥形变形和角膜变薄。软化瓣的前层或整个角膜不会引起锥形变形。瓣软化大大增加并破坏了 Bowman 膜上的应力,而中后基质软化则增加了前层的应力。揉眼会对深层后基质产生很大的压力,而其他层几乎不受影响。

讨论

这些观察结果表明,圆锥角膜至少部分可能是由中后部基质的机械不稳定/损伤引起的,然后在前层施加应力。这可以解释为什么亚临床圆锥角膜在角膜地形图上表现为后部而不是前部隆起。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9fad/9894483/d33adf5bcc6f/pone.0278455.g001.jpg

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