DocumentCode
1354394
Title
Mapping Myocardial Fiber Orientation Using Echocardiography-Based Shear Wave Imaging
Author
Lee, Wei-Ning ; Pernot, Mathieu ; Couade, Mathieu ; Messas, Emmanuel ; Bruneval, Patrick ; Bel, Alain ; Hagége, Albert A. ; Fink, Mathias ; Tanter, Mickaël
Author_Institution
Inst. Langevin, ESPCI ParisTech, Paris, France
Volume
31
Issue
3
fYear
2012
fDate
3/1/2012 12:00:00 AM
Firstpage
554
Lastpage
562
Abstract
The assessment of disrupted myocardial fiber arrangement may help to understand and diagnose hypertrophic or ischemic cardiomyopathy. We hereby proposed and developed shear wave imaging (SWI), which is an echocardiography-based, noninvasive, real-time, and easy-to-use technique, to map myofiber orientation. Five in vitro porcine and three in vivo open-chest ovine hearts were studied. Known in physics, shear wave propagates faster along than across the fiber direction. SWI is a technique that can generate shear waves travelling in different directions with respect to each myocardial layer. SWI further analyzed the shear wave velocity across the entire left-ventricular (LV) myocardial thickness, ranging between 10 (diastole) and 25 mm (systole), with a resolution of 0.2 mm in the middle segment of the LV anterior wall region. The fiber angle at each myocardial layer was thus estimated by finding the maximum shear wave speed. In the in vitro porcine myocardium (n = 5), the SWI-estimated fiber angles gradually changed from +800 ± 7° (endocardium) to +30° ± 13° (midwall) and -40° ± 10° (epicardium) with 0° aligning with the circumference of the heart. This transmural fiber orientation was well correlated with histology findings (r2 - 0.91 ± 0.02, p <; 0.0001). SWI further succeeded in mapping the transmural fiber orientation in three beating ovine hearts in vivo. At midsystole, the average fiber orientation exhibited 71° ± 13° (endocardium), 27° ± 8° (midwall), and - 26° ± 30° (epicardium). We demonstrated the capability of SWI in mapping myocardial fiber orientation in vitro and in vivo. SWI may serve as a new tool for the noninvasive characterization of myocardial fiber structure.
Keywords
diseases; echocardiography; elastic waves; medical image processing; echocardiography; hypertrophic cardiomyopathy; ischemic cardiomyopathy; myocardial fiber arrangement; myocardial fiber orientation; myocardial fiber structure; myocardial thickness; noninvasive characterization; porcine myocardium; shear wave imaging; Heart; Imaging; In vivo; Myocardium; Optical fiber polarization; Probes; Ultrasonic imaging; Anisotropy; echocardiography; fiber; myocardium; shear wave; Animals; Anisotropy; Echocardiography; Heart; Image Processing, Computer-Assisted; Myocardium; Myocytes, Cardiac; Sheep; Signal Processing, Computer-Assisted; Swine;
fLanguage
English
Journal_Title
Medical Imaging, IEEE Transactions on
Publisher
ieee
ISSN
0278-0062
Type
jour
DOI
10.1109/TMI.2011.2172690
Filename
6054058
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