首页> 外文期刊>Annals of Biomedical Engineering: The Journal of the Biomedical Engineering Society >Ex Vivo Lymphatic Perfusion System for Independently Controlling Pressure Gradient and Transmural Pressure in Isolated Vessels
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Ex Vivo Lymphatic Perfusion System for Independently Controlling Pressure Gradient and Transmural Pressure in Isolated Vessels

机译:体外淋巴灌注系统,用于独立控制孤立血管中的压力梯度和透壁压力

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摘要

In addition to external forces, collecting lymphatic vessels intrinsically contract to transport lymph from the extremities to the venous circulation. As a result, the lymphatic endothelium is routinely exposed to a wide range of dynamic mechanical forces, primarily fluid shear stress and circumferential stress, which have both been shown to affect lymphatic pumping activity. Although various ex vivo perfusion systems exist to study this innate pumping activity in response to mechanical stimuli, none are capable of independently controlling the two primary mechanical forces affecting lymphatic contractility: transaxial pressure gradient, , which governs fluid shear stress; and average transmural pressure, , which governs circumferential stress. Hence, the authors describe a novel ex vivo lymphatic perfusion system (ELPS) capable of independently controlling these two outputs using a linear, explicit model predictive control (MPC) algorithm. The ELPS is capable of reproducing arbitrary waveforms within the frequency range observed in the lymphatics in vivo, including a time-varying with a constant , time-varying and , and a constant with a time-varying . In addition, due to its implementation of syringes to actuate the working fluid, a post-hoc method of estimating both the flow rate through the vessel and fluid wall shear stress over multiple, long (5 s) time windows is also described.
机译:除了外力,收集的淋巴管本质上会收缩,将淋巴液从四肢转移到静脉循环。结果,淋巴管内皮常规地暴露于广泛的动态机械力中,主要是流体剪切应力和周向应力,这已被证明都影响淋巴泵送活性。尽管存在各种体外灌注系统来研究这种对机械刺激的先天性泵吸活动,但没有一个能够独立控制影响淋巴收缩的两个主要机械力:跨轴压力梯度,控制流体剪切应力;和平均透壁压力,它控制圆周应力。因此,作者描述了一种新型的离体淋巴灌流系统(ELPS),该系统能够使用线性显式模型预测控制(MPC)算法独立控制这两个输出。 ELPS能够在体内淋巴管中观察到的频率范围内再现任意波形,包括随时间变化的常数,随时间变化的和以及随时间变化的常数。另外,由于其实施注射器来致动工作流体,因此还描述了一种事后法,该方法在多个长(5 s)时间窗口内估算通过容器的流速和流体壁剪切应力。

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