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PMID: 25841292 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Hemodynamic study of TCPC using in vivo and in vitro 4D Flow MRI and numerical simulation.

Journal of biomechanics ·Vol. 48 ·No. 7 ·2015-05-01 ·页码 1325-30

Roldán-Alzate A, García-Rodríguez S, Anagnostopoulos PV, Srinivasan S, Wieben O, François CJ

Abstract

Altered total cavopulmonary connection (TCPC) hemodynamics can cause long-term complications. Patient-specific anatomy hinders generalized solutions. 4D Flow MRI allows in vivo assessment, but not predictions under varying conditions and surgical approaches. Computational fluid dynamics (CFD) improves understanding and explores varying physiological conditions. This study investigated a combination of 4D Flow MRI and CFD to assess TCPC hemodynamics, accompanied with in vitro measurements as CFD validation. 4D Flow MRI was performed in extracardiac and atriopulmonary TCPC subjects. Data was processed for visualization and quantification of velocity and flow. Three-dimensional (3D) geometries were generated from angiography scans and used for CFD and a physical model construction through additive manufacturing. These models were connected to a perfusion system, circulating water through the vena cavae and exiting through the pulmonary arteries at two flow rates. Models underwent 4D Flow MRI and image processing. CFD simulated the in vitro system, applying two different inlet conditions from in vitro 4D Flow MRI measurements; no-slip was implemented at rigid walls. Velocity and flow were obtained and analyzed. The three approaches showed similar velocities, increasing proportionally with high inflow. Atriopulmonary TCPC presented higher vorticity compared to extracardiac at both inflow rates. Increased inflow balanced flow distribution in both TCPC cases. Atriopulmonary IVC flow participated in atrium recirculation, contributing to RPA outflow; at baseline, IVC flow preferentially traveled through the LPA. The combination of patient-specific in vitro and CFD allows hemodynamic parameter control, impossible in vivo. Physical models serve as CFD verification and fine-tuning tools.

Keywords
4D Flow Additive manufacturing Congenital heart disease Magnetic resonance imaging Numerical simulation Total cavopulmonary connection
MeSH 主题词
Adult Anastomosis, Surgical Cardiac Surgical Procedures/adverse effects Child Female Hemodynamics Humans Hydrodynamics Magnetic Resonance Imaging Male Pulmonary Artery/surgery Vena Cava, Inferior/surgery Vena Cava, Superior/surgery
作者与单位
共 6 位作者,点击展开单位 / ORCID
Roldán-Alzate Alejandro
Department of Radiology, University of Wisconsin-Madison, USA. Electronic address: [email protected].
García-Rodríguez Sylvana
Department of Radiology, University of Wisconsin-Madison, USA.
Anagnostopoulos Petros V
Department of Pediatric Cardiology, University of Wisconsin-Madison, USA; Department of Pediatric Cardiothoracic Surgery, University of Wisconsin-Madison, USA.
Srinivasan Shardha
Department of Pediatric Cardiology, University of Wisconsin-Madison, USA.
Wieben Oliver
Department of Radiology, University of Wisconsin-Madison, USA; Department of Medical Physics, University of Wisconsin-Madison, USA.
François Christopher J
Department of Radiology, University of Wisconsin-Madison, USA.
Article Info
Journal
Journal of biomechanics
Abbr.
J Biomech
ISSN
1873-2380
Corresponding email
Published
2015-05-01
电子出版
2015-00-19
页码
1325-30
Language
English
Country/Region
United States
NLM ID
0157375
基金资助
NIDDK NIH HHS · R01 DK096169 · United States
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