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Updated: Oct 3, 2025

In vitro Assessment of Aortic Regurgitation Using Four-Dimensional Flow Magnetic Resonance Imaging
Published on: February 25, 2022
Hemodynamic Parameters for Cardiovascular System in 4D Flow MRI: Mathematical Definition and Clinical Applications
Keiichi Itatani1,2, Tetsuro Sekine3, Masaaki Yamagishi4
1Department of Cardiovascular Surgery, Osaka City University.
Insights
Blood flow imaging in cardiology uses advanced technology to visualize and quantify blood flow, aiding in disease diagnosis and prognosis prediction. New parameters like wall shear stress and turbulent kinetic energy offer deeper insights into cardiovascular health.
Area of Science:
- Cardiovascular Imaging and Hemodynamics
- Biomedical Engineering
- Computational Fluid Dynamics
Background:
- Blood flow imaging is advancing rapidly due to computer technology, enabling visualization and quantification of cardiovascular mechanics.
- Clinical applications include echocardiography vector flow mapping (VFM), 4D flow MRI, and computational fluid dynamics (CFD) for surgical planning.
Purpose of the Study:
- To highlight the importance of novel, mathematically derived parameters for evaluating hemodynamics from measured velocity distributions.
- To discuss various parameters used to assess mechanical stress, vortical flow, helical flow, and turbulence in cardiovascular applications.
Main Methods:
- Utilizing measured velocity distributions to derive parameters such as wall shear stress (WSS), vorticity, enstrophy, circulation, and helicity.
- Employing concepts like energy loss (EL) and turbulent kinetic energy (TKE) to describe turbulence in diseased blood flow.
Main Results:
- Wall shear stress (WSS) parameters indicate mechanical damage to endothelial cells and vascular disease progression.
- Vorticity, enstrophy, and circulation quantify 2D vortical flow strength, while helicity describes 3D helical flow and aortic root turbulence.
- Energy loss (EL) evaluates cardiac workload, and turbulent kinetic energy (TKE) quantifies the severity of jet flow caused by diseases.
Conclusions:
- Novel hemodynamic parameters derived from velocity measurements are crucial for detailed cardiovascular assessments.
- These parameters provide insights into pathophysiology, prognosis, and the impact of mechanical stress and flow patterns on cardiovascular health.
- The discussed parameters are suitable for in vivo measurements and enhance the clinical utility of blood flow imaging.
Abstract:
Blood flow imaging becomes an emerging trend in cardiology with the recent progress in computer technology. It not only visualizes colorful flow velocity streamlines but also quantifies the mechanical stress on cardiovascular structures; thus, it can provide the detailed inspections of the pathophysiology of diseases and predict the prognosis of cardiovascular functions. Clinical applications include the comprehensive assessment of hemodynamics and cardiac functions in echocardiography vector flow mapping (VFM), 4D flow MRI, and surgical planning as a simulation medicine in computational fluid dynamics (CFD).For evaluation of the hemodynamics, novel mathematically derived parameters obtained using measured velocity distributions are essential. Among them, the traditional and typical parameters are wall shear stress (WSS) and its related parameters. These parameters indicate the mechanical damages to endothelial cells, resulting in degenerative intimal change in vascular diseases. Apart from WSS, there are abundant parameters that describe the strength of the vortical and/or helical flow patterns. For instance, vorticity, enstrophy, and circulation indicate the rotating flow strength or power of 2D vortical flows. In addition, helicity, which is defined as the cross-linking number of the vortex filaments, indicates the 3D helical flow strength and adequately describes the turbulent flow in the aortic root in cases with complicated anatomies. For the description of turbulence caused by the diseased flow, there exist two types of parameters based on completely different concepts, namely: energy loss (EL) and turbulent kinetic energy (TKE). EL is the dissipated energy with blood viscosity and evaluates the cardiac workload related to the prognosis of heart failure. TKE describes the fluctuation in kinetic energy during turbulence, which describes the severity of the diseases that cause jet flow. These parameters are based on intuitive and clear physiological concepts, and are suitable for in vivo flow measurements using inner velocity profiles.
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