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A Gimbal-Mounted Pressurization Chamber for Macroscopic and Microscopic Assessment of Ocular Tissues

机译:万向架式加压室用于肉眼和肉眼观察组织的宏观和微观评估

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摘要

The biomechanical model of glaucoma considers intraocular pressure-related stress and resultant strain on load bearing connective tissues of the optic nerve and surrounding peripapillary sclera as one major causative influence that effects cellular, vascular, and axonal components of the optic nerve. By this reasoning, the quantification of variations in the microstructural architecture and macromechanical response of scleral shells in glaucomatous compared to healthy populations provides an insight into any variations that exist between patient populations. While scleral shells have been tested mechanically in planar and pressure-inflation scenarios the link between the macroscopic biomechanical response and the underlying microstructure has not been determined to date. A potential roadblock to determining how the microstructure changes based on pressure is the ability to mount the spherical scleral shells in a method that does not induce unwanted stresses to the samples (for instance, in the flattening of the spherical specimens), and then capturing macroscopic and microscopic changes under pressure. Often what is done is a macroscopic test followed by sample fixation and then imaging to determine microstructural organization. We introduce a novel device and method, which allows spherical samples to be pressurized and macroscopic and microstructural behavior quantified on fully hydrated ocular specimens. The samples are pressurized and a series of markers on the surface of the sclera imaged from several different perspectives and reconstructed between pressure points to allow for mapping of nonhomogenous strain. Pictures are taken from different perspectives through the use of mounting the pressurization scheme in a gimbal that allows for positioning the sample in several different spherical coordinate system configurations. This ability to move the sclera in space about the center of the globe, coupled with an upright multiphoton microscope, allows for collecting collagen, and elastin signal in a rapid automated fashion so the entire globe can be imaged.
机译:青光眼的生物力学模型将眼内压力相关的应力以及视神经结缔组织和周围的乳突周围巩膜上的负荷所产生的应变视为影响视神经细胞,血管和轴突成分的一种主要病因。通过这种推理,与健康人群相比,青光眼巩膜壳的微观结构结构变化和宏观力学响应变化的量化提供了洞察患者群体之间存在的任何变化的见解。尽管巩膜壳已经在平面和压力充气的情况下进行了机械测试,但迄今为止尚未确定宏观生物力学响应与基础微观结构之间的联系。确定基于压力的微观结构如何变化的潜在障碍是能够以一种不会对样品产生不必要应力的方法(例如,在球形样品的压扁过程中)安装球形巩膜壳,然后捕获宏观和在压力下的微观变化。通常要做的是宏观测试,然后固定样品,然后进行成像以确定微观结构。我们介绍了一种新颖的设备和方法,它可以对球形样品进行加压,并在完全水合的眼标本上对宏观和微观结构行为进行量化。对样品加压,并从几个不同的角度对巩膜表面上的一系列标记成像,并在压力点之间进行重建,以绘制非均质应变。通过将加压方案安装在万向架中,可以从不同角度拍摄照片,该万向架可以将样品定位在几种不同的球坐标系配置中。这种将巩膜在球形中心周围的空间中移动的能力,再加上直立的多光子显微镜,可以快速自动收集胶原蛋白和弹性蛋白信号,从而可以对整个球形成像。

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