Patient-Specific Numerical Simulations of Coronary Artery Hemodynamics and Biomechanics: A Pathway to Clinical Use.

IF 1.6 4区 医学 Q3 CARDIAC & CARDIOVASCULAR SYSTEMS
Marina Fandaros, Chloe Kwok, Zachary Wolf, Nicos Labropoulos, Wei Yin
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引用次数: 0

Abstract

Purpose: Numerical models that simulate the behaviors of the coronary arteries have been greatly improved by the addition of fluid-structure interaction (FSI) methods. Although computationally demanding, FSI models account for the movement of the arterial wall and more adequately describe the biomechanical conditions at and within the arterial wall. This offers greater physiological relevance over Computational Fluid Dynamics (CFD) models, which assume the walls do not move or deform. Numerical simulations of patient-specific cases have been greatly bolstered by the use of imaging modalities such as Computed Tomography Angiography (CTA), Magnetic Resonance Imaging (MRI), Optical Coherence Tomography (OCT), and Intravascular Ultrasound (IVUS) to reconstruct accurate 2D and 3D representations of artery geometries. The goal of this study was to conduct a comprehensive review on CFD and FSI models on coronary arteries, and evaluate their translational potential.

Methods: This paper reviewed recent work on patient-specific numerical simulations of coronary arteries that describe the biomechanical conditions associated with atherosclerosis using CFD and FSI models. Imaging modality for geometry collection and clinical applications were also discussed.

Results: Numerical models using CFD and FSI approaches are commonly used to study biomechanics within the vasculature. At high temporal and spatial resolution (compared to most cardiac imaging modalities), these numerical models can generate large amount of biomechanics data.

Conclusions: Physiologically relevant FSI models can more accurately describe atherosclerosis pathogenesis, and help to translate biomechanical assessment to clinical evaluation.

针对特定患者的冠状动脉血液动力学和生物力学数值模拟:临床应用之路。
目的:模拟冠状动脉行为的数值模型因加入了流固耦合(FSI)方法而得到了极大的改进。虽然计算要求高,但 FSI 模型考虑了动脉壁的运动,能更充分地描述动脉壁和动脉壁内的生物力学条件。与假定动脉壁不会移动或变形的计算流体力学(CFD)模型相比,FSI 模型具有更强的生理相关性。计算机断层扫描(CTA)、磁共振成像(MRI)、光学相干断层扫描(OCT)和血管内超声波(IVUS)等成像模式可重建精确的二维和三维动脉几何图形,这极大地促进了对特定患者病例的数值模拟。本研究的目的是全面回顾冠状动脉的 CFD 和 FSI 模型,并评估其转化潜力:本文回顾了利用 CFD 和 FSI 模型对冠状动脉进行患者特异性数值模拟的最新研究成果,这些模型描述了与动脉粥样硬化相关的生物力学条件。此外,还讨论了几何收集和临床应用的成像模式:使用 CFD 和 FSI 方法的数值模型通常用于研究血管内的生物力学。在高时空分辨率下(与大多数心脏成像模式相比),这些数值模型可生成大量生物力学数据:与生理相关的 FSI 模型可以更准确地描述动脉粥样硬化的发病机制,并有助于将生物力学评估转化为临床评估。
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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