Multi-Modal in Vitro Experiments Mimicking the Flow Through a Mitral Heart Valve Phantom.

IF 1.6 4区 医学 Q3 CARDIAC & CARDIOVASCULAR SYSTEMS
Lea Christierson, Petter Frieberg, Tania Lala, Johannes Töger, Petru Liuba, Johan Revstedt, Hanna Isaksson, Nina Hakacova
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引用次数: 0

Abstract

Purpose: Fluid-structure interaction (FSI) models are more commonly applied in medical research as computational power is increasing. However, understanding the accuracy of FSI models is crucial, especially in the context of heart valve disease in patient-specific models. Therefore, this study aimed to create a multi-modal benchmarking data set for cardiac-inspired FSI models, based on clinically important parameters, such as the pressure, velocity, and valve opening, with an in vitro phantom setup.

Method: An in vitro setup was developed with a 3D-printed phantom mimicking the left heart, including a deforming mitral valve. A range of pulsatile flows were created with a computer-controlled motor-and-pump setup. Catheter pressure measurements, magnetic resonance imaging (MRI), and echocardiography (Echo) imaging were used to measure pressure and velocity in the domain. Furthermore, the valve opening was quantified based on cine MRI and Echo images.

Result: The experimental setup, with 0.5% cycle-to-cycle variation, was successfully built and six different flow cases were investigated. Higher velocity through the mitral valve was observed for increased cardiac output. The pressure difference across the valve also followed this trend. The flow in the phantom was qualitatively assessed by the velocity profile in the ventricle and by streamlines obtained from 4D phase-contrast MRI.

Conclusion: A multi-modal set of data for validation of FSI models has been created, based on parameters relevant for diagnosis of heart valve disease. All data is publicly available for future development of computational heart valve models.

Abstract Image

模拟流经二尖瓣心脏瓣膜模型的多模式体外实验
目的:随着计算能力的提高,流体-结构相互作用(FSI)模型在医学研究中的应用越来越普遍。然而,了解 FSI 模型的准确性至关重要,尤其是在心脏瓣膜疾病的特定患者模型中。因此,本研究旨在通过体外模型设置,根据压力、速度和瓣膜开放度等临床重要参数,为心脏启发的 FSI 模型创建一个多模态基准数据集:方法:利用三维打印的模拟左心(包括变形的二尖瓣)模型开发了体外装置。通过计算机控制的电机和泵装置产生了一系列脉动流。导管压力测量、磁共振成像(MRI)和超声心动图(Echo)成像被用来测量瓣膜内的压力和速度。此外,还根据 cine MRI 和 Echo 图像对瓣膜开放度进行了量化:结果:成功建立了周期变化率为 0.5% 的实验装置,并研究了六种不同的流量情况。在心输出量增加的情况下,通过二尖瓣的速度更高。瓣膜两侧的压力差也遵循这一趋势。通过心室的速度曲线和四维相位对比核磁共振成像获得的流线,对模型中的血流进行了定性评估:根据诊断心脏瓣膜疾病的相关参数,创建了一套用于验证 FSI 模型的多模式数据。所有数据都是公开的,可供未来开发心脏瓣膜计算模型之用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cardiovascular Engineering and Technology
Cardiovascular Engineering and Technology Engineering-Biomedical Engineering
CiteScore
4.00
自引率
0.00%
发文量
51
期刊介绍: Cardiovascular Engineering and Technology is a journal publishing the spectrum of basic to translational research in all aspects of cardiovascular physiology and medical treatment. It is the forum for academic and industrial investigators to disseminate research that utilizes engineering principles and methods to advance fundamental knowledge and technological solutions related to the cardiovascular system. Manuscripts spanning from subcellular to systems level topics are invited, including but not limited to implantable medical devices, hemodynamics and tissue biomechanics, functional imaging, surgical devices, electrophysiology, tissue engineering and regenerative medicine, diagnostic instruments, transport and delivery of biologics, and sensors. In addition to manuscripts describing the original publication of research, manuscripts reviewing developments in these topics or their state-of-art are also invited.
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