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OCT Study of Mechanical Properties Associated with Trabecular Meshwork and Collector Channel Motion in Human Eyes

机译:OCT研究与人眼小梁网和收集通道运动相关的力学性能

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摘要

We report the use of a high-resolution optical coherence tomography (OCT) imaging platform to identify and quantify pressure-dependent aqueous outflow system (AOS) tissue relationships and to infer mechanical stiffness through examination of tissue properties in ex vivo human eyes. Five enucleated human eyes are included in this study, with each eye prepared with four equal-sized quadrants, each encompassing 90 degrees of the limbal circumference. In radial limbal segments perfusion pressure within Schlemm’s canal (SC) is controlled by means of a perfusion cannula inserted into the canal lumen, while the other end of the cannula leads to a reservoir at a height that can control the pressure in the cannula. The OCT system images the sample with a spatial resolution of about 5 μm from the trabecular meshwork (TM) surface. Geometric parameters are quantified from the 2D OCT images acquired from the sample subjected to controlled changes in perfusion pressures; parameters include area and height of the lumen of SC, collector channel entrances (CCE) and intrascleral collector channels (ISCC). We show that 3D OCT imaging permits the identification of 3-D relationships of the SC, CCE and ISCC lumen dimensions. Collagen flaps or leaflets are found at CCE that are attached or hinged at only one end, whilst the flaps are connected to the TM by cylindrical structures spanning SC. Increasing static SC pressures resulted in SC lumen enlargement with corresponding enlargement of the CCE and ISCC lumen. Pressure-dependent SC lumen area and height changes are significant at the 0.01 levels for ANOVA, and at the 0.05 for both polynomial curves and Tukey paired comparisons. Dynamic measurements demonstrate a synchronous increase in SC, CCE and ISCC lumen height in response to pressure changes from 0 to 10, 30 or 50 mm Hg, respectively, and the response time is within the 50-millisecond range. From the measured SC volume and corresponding IOP values, we demonstrate that an elastance curve can be developed to infer the mechanical stiffness of the TM by means of quantifying pressure-dependent SC volume changes over a 2 mm radial region of SC. Our study finds pressure-dependent motion of the TM that corresponds to collagen leaflet configuration motion at CCE; the synchronous tissue motion also corresponds with synchrony of SC and CCE lumen dimension changes.
机译:我们报告使用高分辨率光学相干断层扫描(OCT)成像平台,以识别和量化压力依赖性水流出系统(AOS)组织关系,并通过检查离体人眼中的组织特性来推断机械刚度。这项研究包括五只去核的人眼,每只眼准备有四个相等大小的象限,每个象限围绕角膜缘90度。在放射状的角膜缘节段中,施莱姆管(SC)内的灌注压力是通过插入导管内腔的灌注套管来控制的,而套管的另一端通向可以控制套管内压力的高度的储液罐。 OCT系统从小梁网(TM)表面以约5μm的空间分辨率对样品进行成像。几何参数是从2D OCT图像中量化的,该2D OCT图像是在受到受控的灌注压力变化的情况下从样品获取的;参数包括SC管腔的面积和高度,收集器通道入口(CCE)和巩膜内收集器通道(ISCC)。我们显示3D OCT成像可以识别SC,CCE和ISCC管腔尺寸的3D关系。在CCE处发现胶原皮瓣或小叶仅在一端连接或铰接,而皮瓣则通过跨越SC的圆柱结构连接到TM。静态SC压力的增加导致SC管腔增大,而CCE和ISCC管腔相应增大。压力相关的SC管腔面积和高度变化在ANOVA为0.01时显着,在多项式曲线和Tukey配对比较中都为0.05。动态测量表明,响应压力从0到10、30或50 mm Hg的变化,SC,CCE和ISCC管腔高度同步增加,并且响应时间在50毫秒范围内。从测得的SC体积和相应的IOP值,我们证明可以通过量化SC径向2 mm区域内依赖于压力的SC体积变化来开发弹性曲线来推断TM的机械刚度。我们的研究发现TM的压力依赖性运动与CCE处的胶原小叶构型运动相对应。组织的同步运动也与SC和CCE管腔尺寸变化的同步相对应。

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