Fast Measurements of Flow through Mitral Regurgitant Orifices with Magnetic Resonance Phase Velocity Mapping

被引:0
作者
Haosen Zhang
Sandra S. Halliburton
Richard D. White
George P. Chatzimavroudis
机构
[1] Cleveland State University,Laboratory of Biofluid Mechanics and Cardiovascular Imaging, Department of Chemical and Biomedical Engineering
[2] The Cleveland Clinic Foundation,Section of Cardiovascular Imaging, Division of Radiology
[3] Mallinckrodt Institute of Radiology,Cardiovascular Imaging Laboratory
[4] Washington University School of Medicine,undefined
来源
Annals of Biomedical Engineering | 2004年 / 32卷
关键词
MRI; Segmented ; -space; Mitral regurgitation; Velocity measurements; Flow quantification; Control volume;
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摘要
Magnetic-resonance (MR) phase velocity mapping (PVM) shows promise in measuring the mitral regurgitant volume. However, in its conventional nonsegmented form, MR-PVM is slow and impractical for clinical use. The aim of this study was to evaluate the accuracy of rapid, segmented k-spaceMR-PVM in quantifying the mitral regurgitant flow through a control volume (CV) method. Two segmented MR-PVM schemes, one with seven (seg-7) and one with nine (seg-9) lines per segment, were evaluated in acrylic regurgitant mitral valve models under steady and pulsatile flow. A nonsegmented (nonseg) MR-PVM acquisition was also performed for reference. The segmented acquisitions were considerably faster (<10 min) than the nonsegmented (>45 min). The regurgitant flow rates and volumes measured with segmented MR-PVM agreed closely with those measured with nonsegmented MR-PVM (differences <5%, p>0.05), when the CV was large enough to exclude the region of flow acceleration and aliasing from its boundaries. The regurgitant orifice shape (circular vs. slit-like) and the presence of aortic outflow did not significantly affect the accuracy of the results under both steady and pulsatile flow (p>0.05). This study shows that segmented k-space MR-PVM canaccurately quantify the flow through regurgitant orifices using the CV method and demonstrates great clinical potential.
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页码:1618 / 1627
页数:9
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