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Controlled compliancy of 3D printed vascular patient specific phantoms

机译:3D印刷血管患者特异性幽灵的控制顺应性

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Purpose: 3D printed (3DP) patient specific vascular phantoms provide the ability to improve device testing and to aid in the course of treatment of vascular disease, while reducing the need for in-vivo experiments. In addition to accurate vascular geometric reproducibility, such phantoms could allow simulation of certain vascular mechanical properties. We investigated various 3DP designs to allow simulation of physiological transmural pressure on phantom vasculature. Materials and Methods: A transparent compliance chamber was created using an Eden260V printer (Stratasys) with VeroClear and acrylic to accommodate 3DP patient specific vascular phantoms. The patient vascular geometries were acquired from a CT angiogram (Aquilion ONE, Canon Medical) and segmented using Vitrea workstation (Vital Images). The segmented geometry was manipulated in Autodesk Meshmixer and 3D printed using Agilus. The phantom was integrated in the compliance chamber and connected to a pump which simulated physiologic pulsatile flow waveforms. Compliance of the vessels was varied by filling the chamber with various levels of liquid and air. This setup allowed controlled expansion of the 3DP arteries, as a function of the liquid level while a programmable pump simulated the blood flow through the vascular network. The pressure within the vessels was measured for various compliancy settings while physiological flow rates were simulated through the arteries. Results: A neurovascular phantom was placed in the chamber and amount of artery expansion diameter was controlled by changing the liquid level in the compliance chamber. Artery patency and contrast flow were demonstrated using x-ray angiography. The pressures in the left and the right internal carotid artery increased from 98mmHg to 104mmHg and from 96mmHg to 102mmHg, respectively, while maintaining the same flow rates. Conclusions: 3D printed patient specific neurovascular phantoms can be manipulated through using of a compliance chamber in order to establish physiologically relevant hemodynamic conditions.
机译:目的:3D印刷(3DP)患者特异性血管幽灵提供改善器件测试的能力,并帮助辅助血管疾病的过程,同时减少对体内实验的需求。除了精确的血管几何再现性之外,这种幽灵还可以允许模拟某些血管机械性能。我们调查了各种3DP设计,以允许模拟幻影脉管系统的生理透气压力。材料和方法:一种透明柔性腔被使用Eden260V打印机(Stratasys公司)与VeroClear和丙烯酸以适应3DP患者特异性血管幻影创建。患者血管几何是从CT血管造影(Aquilion Ane,Canon Medical)和使用Vitrea工作站进行分割的(重要图像)。在Autodesk Meshmixer和3D使用Agilus打印的3D中操纵分段几何。幻影集成在合规室中并连接到模拟生理脉动流动波形的泵。通过用各种水平的液体和空气填充腔室来改变血管的顺应性。该设置允许控制3DP动脉的扩展,作为液位的函数,而可编程泵通过血管网络模拟血液流动。测量血管内的压力以针对各种顺应性设置测量,同时通过动脉模拟生理流速。结果:将神经血管幻影置于腔室中,通过改变顺应室中的液位来控制动脉膨胀直径的量。使用X射线血管造影证明动脉通畅和对比度。左和压力的右侧颈内动脉分别从98mmHg上升到104mmHg和96mmHg至102mmHg,同时保持相同的流速。结论:3D印刷患者特异性神经血管杂色可以通过使用柔顺室来操纵,以便建立生理相关的血液动力学条件。

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