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Theoretical Analysis of Oxygen Consumption by Vascular Walls Exposed toHemodynamic Stress in the Human Retinal Microvascular Network

机译:视网膜微血管网络中受到热力学应力的血管壁耗氧量的理论分析

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The rates at which endothelial and smooth muscle cells in vessel walls should consume oxygen during blood transport along the length of a microvascular network are highly controversial. We examined the arteriovenous distribution of oxygen consumption by a microvessel wall exposed to circumferential wall stress and fluid shear stress. A model of retinal microcirculation in which a network that branched dichotomously at every bifurcation depended on both a flow conservation law and a modified Murray's law with a diameter exponent of 2.85 was used. Oxygen consumption was calculated from the integration of the number of branches multiplied by the consumption rates of the endothelial and smooth muscle cells per branch unit. The oxygen consumption by all of the microvessel walls was only about 1.9% of the total oxygen consumption throughout the microvascular network, including the surrounding tissues. This result suggests that the oxygen that had diffused across the microvessel walls was mainly consumed by the surrounding tissues. Also, based on the circumferential and shear stresses, the microvascular flow and pressure control system is presumably designed to optimize the vessel tone of the arteriolar network so that the microcirculation can accommodate material exchange.
机译:在沿微血管网络的长度进行血液运输过程中,血管壁中的内皮细胞和平滑肌细胞消耗氧气的速率存在很大争议。我们检查了暴露于圆周壁应力和流体剪切应力的微血管壁的动静脉耗氧量分布。使用视网膜微循环模型,在该模型中,在每个分叉处均一分为二地分支的网络取决于流量守恒定律和直径指数为2.85的修正Murray定律。通过将分支数乘以每个分支单位的内皮细胞和平滑肌细胞的消耗率,求出氧气消耗量。所有微血管壁的耗氧量仅占整个微血管网络(包括周围组织)耗氧总量的1.9%。该结果表明,已扩散穿过微血管壁的氧气主要被周围的组织消耗。同样,基于周向应力和剪切应力,微血管流量和压力控制系统可能设计为优化小动脉网络的血管张力,以便微循环可适应物质交换。

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