Literature DB >> 31326119

Evaluation of 4D flow MRI-based non-invasive pressure assessment in aortic coarctations.

Simone Saitta1, Selene Pirola2, Filippo Piatti3, Emiliano Votta4, Federico Lucherini4, Francesca Pluchinotta5, Mario Carminati5, Massimo Lombardi6, Christian Geppert7, Federica Cuomo8, Carlos Alberto Figueroa8, Xiao Yun Xu2, Alberto Redaelli9.   

Abstract

Severity of aortic coarctation (CoA) is currently assessed by estimating trans-coarctation pressure drops through cardiac catheterization or echocardiography. In principle, more detailed information could be obtained non-invasively based on space- and time-resolved magnetic resonance imaging (4D flow) data. Yet the limitations of this imaging technique require testing the accuracy of 4D flow-derived hemodynamic quantities against other methodologies. With the objective of assessing the feasibility and accuracy of this non-invasive method to support the clinical diagnosis of CoA, we developed an algorithm (4DF-FEPPE) to obtain relative pressure distributions from 4D flow data by solving the Poisson pressure equation. 4DF-FEPPE was tested against results from a patient-specific fluid-structure interaction (FSI) simulation, whose patient-specific boundary conditions were prescribed based on 4D flow data. Since numerical simulations provide noise-free pressure fields on fine spatial and temporal scales, our analysis allowed to assess the uncertainties related to 4D flow noise and limited resolution. 4DF-FEPPE and FSI results were compared on a series of cross-sections along the aorta. Bland-Altman analysis revealed very good agreement between the two methodologies in terms of instantaneous data at peak systole, end-diastole and time-averaged values: biases (means of differences) were +0.4 mmHg, -1.1 mmHg and +0.6 mmHg, respectively. Limits of agreement (2 SD) were ±0.978 mmHg, ±1.06 mmHg and ±1.97 mmHg, respectively. Peak-to-peak and maximum trans-coarctation pressure drops obtained with 4DF-FEPPE differed from FSI results by 0.75 mmHg and -1.34 mmHg respectively. The present study considers important validation aspects of non-invasive pressure difference estimation based on 4D flow MRI, showing the potential of this technology to be more broadly applied to the clinical practice.
Copyright © 2019 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  4D flow MRI; Aortic coarctation; Fluid dynamics; Non-invasive pressure difference estimation; Pressure Poisson equation

Year:  2019        PMID: 31326119     DOI: 10.1016/j.jbiomech.2019.07.004

Source DB:  PubMed          Journal:  J Biomech        ISSN: 0021-9290            Impact factor:   2.712


  10 in total

Review 1.  Noninvasive imaging assessment of portal hypertension.

Authors:  Paul Kennedy; Octavia Bane; Stefanie J Hectors; Aaron Fischman; Thomas Schiano; Sara Lewis; Bachir Taouli
Journal:  Abdom Radiol (NY)       Date:  2020-09-14

Review 2.  4D flow MRI applications in congenital heart disease.

Authors:  Judy Rizk
Journal:  Eur Radiol       Date:  2020-09-01       Impact factor: 5.315

3.  CTA-Based Non-invasive Estimation of Pressure Gradients Across a CoA: a Validation Against Cardiac Catheterisation.

Authors:  Mingzi Zhang; Jinlong Liu; Haibo Zhang; David I Verrelli; Qian Wang; Liwei Hu; Yujie Li; Makoto Ohta; Jinfen Liu; Xi Zhao
Journal:  J Cardiovasc Transl Res       Date:  2021-03-04       Impact factor: 4.132

4.  Effects of Uncertainty of Outlet Boundary Conditions in a Patient-Specific Case of Aortic Coarctation.

Authors:  Maria Nicole Antonuccio; Alessandro Mariotti; Benigno Marco Fanni; Katia Capellini; Claudio Capelli; Emilie Sauvage; Simona Celi
Journal:  Ann Biomed Eng       Date:  2021-08-24       Impact factor: 3.934

5.  A novel MRI-based data fusion methodology for efficient, personalised, compliant simulations of aortic haemodynamics.

Authors:  Catriona Stokes; Mirko Bonfanti; Zeyan Li; Jiang Xiong; Duanduan Chen; Stavroula Balabani; Vanessa Díaz-Zuccarini
Journal:  J Biomech       Date:  2021-10-09       Impact factor: 2.712

6.  A Parametric Study of Flushing Conditions for Improvement of Angioscopy Visibility.

Authors:  Kohei Mitsuzuka; Yujie Li; Toshio Nakayama; Hitomi Anzai; Daisuke Goanno; Simon Tupin; Mingzi Zhang; Haoran Wang; Kazunori Horie; Makoto Ohta
Journal:  J Funct Biomater       Date:  2022-06-01

7.  Synthesis of patient-specific multipoint 4D flow MRI data of turbulent aortic flow downstream of stenotic valves.

Authors:  Pietro Dirix; Stefano Buoso; Eva S Peper; Sebastian Kozerke
Journal:  Sci Rep       Date:  2022-09-26       Impact factor: 4.996

8.  Comparison of Four-Dimensional Magnetic Resonance Imaging Analysis of Left Ventricular Fluid Dynamics and Energetics in Ischemic and Restrictive Cardiomyopathies.

Authors:  Alessandra Riva; Francesco Sturla; Silvia Pica; Antonia Camporeale; Lara Tondi; Simone Saitta; Alessandro Caimi; Daniel Giese; Giovanni Palladini; Paolo Milani; Serenella Castelvecchio; Lorenzo Menicanti; Alberto Redaelli; Massimo Lombardi; Emiliano Votta
Journal:  J Magn Reson Imaging       Date:  2022-01-24       Impact factor: 5.119

9.  Patient-Specific Bicuspid Aortic Valve Biomechanics: A Magnetic Resonance Imaging Integrated Fluid-Structure Interaction Approach.

Authors:  Monica Emendi; Francesco Sturla; Ram P Ghosh; Matteo Bianchi; Filippo Piatti; Francesca R Pluchinotta; Daniel Giese; Massimo Lombardi; Alberto Redaelli; Danny Bluestein
Journal:  Ann Biomed Eng       Date:  2020-08-17       Impact factor: 3.934

10.  Personalized Pre- and Post-Operative Hemodynamic Assessment of Aortic Coarctation from 3D Rotational Angiography.

Authors:  Cosmin-Ioan Nita; Andrei Puiu; Daniel Bunescu; Lucian Mihai Itu; Viorel Mihalef; Gouthami Chintalapani; Aimee Armstrong; Jeffrey Zampi; Lee Benson; Puneet Sharma; Saikiran Rapaka
Journal:  Cardiovasc Eng Technol       Date:  2021-06-18       Impact factor: 2.495

  10 in total

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