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Effect of ocular shape and vascular geometry on retinal hemodynamics: a computational model

机译:眼形和血管几何形状对视网膜血流动力学的影响:一种计算模型

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A computational model for retinal hemodynamics accounting for ocular curvature is presented. The model combines (i) a hierarchical Darcy model for the flow through small arterioles, capillaries and small venules in the retinal tissue, where blood vessels of different size are comprised in different hierarchical levels of a porous medium; and (ii) a one-dimensional network model for the blood flow through retinal arterioles and venules of larger size. The non-planar ocular shape is included by (i) defining the hierarchical Darcy flow model on a two-dimensional curved surface embedded in the three-dimensional space; and (ii) mapping the simplified one-dimensional network model onto the curved surface. The model is solved numerically using a finite element method in which spatial domain and hierarchical levels are discretized separately. For the finite element method, we use an exterior calculus-based implementation which permits an easier treatment of non-planar domains. Numerical solutions are verified against suitably constructed analytical solutions. Numerical experiments are performed to investigate how retinal hemodynamics is influenced by the ocular shape (sphere, oblate spheroid, prolate spheroid and barrel are compared) and vascular architecture (four vascular arcs and a branching vascular tree are compared). The model predictions show that changes in ocular shape induce non-uniform alterations of blood pressure and velocity in the retina. In particular, we found that (i) the temporal region is affected the least by changes in ocular shape, and (ii) the barrel shape departs the most from the hemispherical reference geometry in terms of associated pressure and velocity distributions in the retinal microvasculature. These results support the clinical hypothesis that alterations in ocular shape, such as those occurring in myopic eyes, might be associated with pathological alterations in retinal hemodynamics.
机译:提出了考虑眼曲率的视网膜血流动力学计算模型。该模型结合了(i)达西模型,该模型用于通过视网膜组织中的小动脉,毛细血管和小静脉流动,其中不同大小的血管包含在多孔介质的不同层次中; (ii)一维网络模型,用于通过较大尺寸的视网膜小动脉和小静脉的血流。通过(i)在嵌入三维空间中的二维曲面上定义分层的达西流模型来包含非平面的眼形。 (ii)将简化的一维网络模型映射到曲面上。使用有限元方法对模型进行数值求解,其中空间域和层次级别分别离散。对于有限元方法,我们使用基于外部演算的实现,可以更轻松地处理非平面域。数值解决方案已根据适当构造的分析解决方案进行了验证。进行了数值实验,以研究眼球形状(比较球形,扁球形,扁球形和桶形)和血管结构(比较四个血管弧和分支血管树)如何影响视网膜血液动力学。该模型预测表明,眼形的变化会引起视网膜内血压和速度的不均匀变化。特别是,我们发现(i)眼部形状变化对颞区的影响最小,并且(ii)在视网膜微脉管系统中相关的压力和速度分布方面,镜筒形状与半球参考几何形状的偏离最大。这些结果支持了临床假设,即眼球形状的改变(例如近视眼中发生的改变)可能与视网膜血流动力学的病理改变有关。

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