Phase contrast MRI of myocardial 3D strain by encoding contiguous slices in a single shot

被引:37
作者
Reese, TG
Feinberg, DA
Dou, JG
Wedeen, VJ
机构
[1] Massachusetts Gen Hosp, NMR Ctr, Dept Radiol, Charlestown, MA 02129 USA
[2] Adv MRI Technol, Sebastopol, CA USA
[3] Washington Univ, Dept Radiol, St Louis, MO 63130 USA
[4] MIT, Dept Nucl Engn, Cambridge, MA 02139 USA
关键词
MRI; phase contrast; 3D; EPI; myocardium; strain;
D O I
10.1002/mrm.10111
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Quantitative measurements of inherently three-dimensional (3D) cardiac strain and strain rate require 3D data; MRI provides uniquely high sensitivity to material strain by combining phase contrast with single-shot acquisition methods, such as echoplanar imaging (EPI). Previous MRI methods applied to 3D strain used multiple two-dimensional (2D) acquisitions and suffered loss of sensitivity due to magnification within the strain calculation of physiologic noise related to cardiac beat-to-beat variability. In the present work, each single-shot acquisition generates 3D image data by acquiring two contiguous 2D Fourier transform (FT) images in a single echo train of an EPI readout. Although strain encoding divides across multiple EPI shots, each strain component is computed only within single-shot data, avoiding noise magnification. Strain tensor maps are displayed using iconic 3D graphics or a simple color code of tensor shape. In a deforming gel phantom, gradient-recalled echo (GRE) MRI movies of 3D strain rates match expected strain fields. In normal human subjects, 3D strain rate tensor movies of heart and brain comprising seven slices in each of seven cardiac phases were completed in 56 heartbeats. Stimulated echo (STE) MRI of net systolic 3D strain was also demonstrated. Two-slices-in-one-shot spatial encoding permits a complete quantitative survey of ventricular 3D strain in under a minute, with routine patient supervision and turnkey image processing. (C) 2002 Wiley-Liss, Inc.
引用
收藏
页码:665 / 676
页数:12
相关论文
共 43 条
[1]   Kinematic analysis of left ventricular deformation in myocardial infarction using magnetic resonance cardiac tagging [J].
Aelen, FWL ;
Arts, T ;
Sanders, DGM ;
Thelissen, GRP ;
Prinzen, FW ;
Reneman, RS .
INTERNATIONAL JOURNAL OF CARDIAC IMAGING, 1999, 15 (03) :241-251
[2]  
Arai AE, 1999, MAGNET RESON MED, V42, P98, DOI 10.1002/(SICI)1522-2594(199907)42:1<98::AID-MRM14>3.0.CO
[3]  
2-H
[4]   INTRAMURAL MECHANICS IN HYPERTROPHIC CARDIOMYOPATHY - FUNCTIONAL MAPPING WITH STRAIN-RATE MR-IMAGING [J].
BEACHE, GM ;
WEDEEN, VJ ;
WEISSKOFF, RM ;
OGARA, PT ;
PONCELET, BP ;
CHESLER, DA ;
BRADY, TJ ;
ROSEN, BR ;
DINSMORE, RE .
RADIOLOGY, 1995, 197 (01) :117-124
[5]   DEPENDENCE OF LEFT-VENTRICULAR TWIST-RADIAL SHORTENING RELATIONS ON CARDIAC CYCLE PHASE [J].
BEYAR, R ;
YIN, FCP ;
HAUSKNECHT, M ;
WEISFELDT, ML ;
KASS, DA .
AMERICAN JOURNAL OF PHYSIOLOGY, 1989, 257 (04) :H1119-H1126
[6]  
Castro PL, 2000, BIOMED SCI INSTRUM, V395, P197
[7]   SIMPLE PROTON SPECTROSCOPIC IMAGING [J].
DIXON, WT .
RADIOLOGY, 1984, 153 (01) :189-194
[8]   BRAIN MOTION - MEASUREMENT WITH PHASE-CONTRAST MR IMAGING [J].
ENZMANN, DR ;
PELC, NJ .
RADIOLOGY, 1992, 185 (03) :653-660
[9]   HUMAN-BRAIN MOTION AND CEREBROSPINAL-FLUID CIRCULATION DEMONSTRATED WITH MR VELOCITY IMAGING [J].
FEINBERG, DA ;
MARK, AS .
RADIOLOGY, 1987, 163 (03) :793-799
[10]  
Feinberg DA., 2000, P INT SOC MAG RESON, V8, P681