Quantification of left ventricular functional parameter values using 3D spiral bSSFP and through-time Non-Cartesian GRAPPA
Kestutis Barkauskas,Prabhakar Rajiah,Ravi Ashwath,Jesse I. Hamilton,Yong Chen,Dan Ma,Katherine L. Wright,Vikas Gulani,Mark A. Griswold,Nicole Seiberlich +9 more
TL;DR: The 3D through-time spiral GRAPPA method demonstrated equivalent systolic left ventricular functional parameter values, required significantly less total scan time and yielded acceptable image quality with respect to the 2D segmented multi-breathhold standard in this study.
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Abstract: The standard clinical acquisition for left ventricular functional parameter analysis with cardiovascular magnetic resonance (CMR) uses a multi-breathhold multi-slice segmented balanced SSFP sequence Performing multiple long breathholds in quick succession for ventricular coverage in the short-axis orientation can lead to fatigue and is challenging in patients with severe cardiac or respiratory disorders This study combines the encoding efficiency of a six-fold undersampled 3D stack of spirals balanced SSFP sequence with 3D through-time spiral GRAPPA parallel imaging reconstruction This 3D spiral method requires only one breathhold to collect the dynamic data Ten healthy volunteers were recruited for imaging at 3 T The 3D spiral technique was compared against 2D imaging in terms of systolic left ventricular functional parameter values (Bland-Altman plots), total scan time (Welch’s t-test) and qualitative image rating scores (Wilcoxon signed-rank test) Systolic left ventricular functional values were not significantly different (ie 3D-2D) between the methods The 95% confidence interval for ejection fraction was −01 ± 16% (mean ± 196*SD) The total scan time for the 3D spiral technique was 48 s, which included one breathhold with an average duration of 14’s for the dynamic scan, plus 34’s to collect the calibration data under free-breathing conditions The 2D method required an average of 5min40s for the same coverage of the left ventricle The difference between 3D and 2D image rating scores was significantly different from zero (Wilcoxon signed-rank test, p < 005); however, the scores were at least 3 (ie average) or higher for 3D spiral imaging The 3D through-time spiral GRAPPA method demonstrated equivalent systolic left ventricular functional parameter values, required significantly less total scan time and yielded acceptable image quality with respect to the 2D segmented multi-breathhold standard in this study Moreover, the 3D spiral technique used just one breathhold for dynamic imaging, which is anticipated to reduce patient fatigue as part of the complete cardiac examination in future studies that include patients
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Citations
Single-breath-hold 3-D CINE imaging of the left ventricle using Cartesian sampling.
Jens Wetzl,Michaela Schmidt,François Pontana,Benjamin Longère,Felix Lugauer,Andreas Maier,Joachim Hornegger,Christoph Forman +7 more
TL;DR: Visual comparisons of corresponding short-axis slices of 2-D and 3-D CINE show an excellent match, while 3- D CINE also allows reformatting to other orientations, and Ventricular function parameters do not significantly differ from values based on 2-d CINE imaging.
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Highly-accelerated self-gated free-breathing 3D cardiac cine MRI: validation in assessment of left ventricular function
Jing Liu,Li Feng,Hsin-Wei Shen,Chengcheng Zhu,Yan Wang,Kanae Mukai,Gabriel C. Brooks,Karen G. Ordovas,David Saloner,David Saloner +9 more
TL;DR: The proposed 3D cardiac cine imaging method enables reliable respiratory self- gating performance with good reproducibility, and provides comparable image quality and functional measurements to 2D imaging, suggesting that self-gated, free-breathing 3D pulmonary cine MRI framework is promising for improved patient comfort and cardiac MRI scan efficiency.
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Update on the Role of Cardiac Magnetic Resonance Imaging in Congenital Heart Disease.
TL;DR: Cardiac magnetic resonance imaging is the most comprehensive imaging modality available today for the evaluation of CHD through its ability to measure function, flow and vessel sizes, create three-dimensional reconstructions, and perform tissue characterization, all in a single imaging study.
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Single breath‐hold 3D cardiac T1 mapping using through‐time spiral GRAPPA
Yong Chen,Wei Ching Lo,Jesse I. Hamilton,Kestutis Barkauskas,Haris Saybasili,Katherine L. Wright,Joshua Batesole,Mark A. Griswold,Vikas Gulani,Nicole Seiberlich +9 more
TL;DR: A three‐dimensional T1 mapping technique was developed using a non‐Cartesian parallel imaging method, which enables fast and accurate T1 mapped of cardiac tissues in a single short breath‐hold.
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Utility of single-shot compressed sensing cardiac magnetic resonance cine imaging for assessment of biventricular function in free-breathing and arrhythmic pediatric patients.
TL;DR: In this article, the feasibility and accuracy of single-shot compressed-sensing (CS) cardiac magnetic resonance cine technology for the assessment of biventricular function and morphology in free-breathing (FB) pediatrics, especially those with arrhythmia, were explored.
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