DocumentCode
1002783
Title
Theoretical Quality Assessment of Myocardial Elastography with In Vivo Validation
Author
Lee, Wei-Ning ; Ingrassia, Christopher M. ; Fung-Kee-Fung, Simon D. ; Costa, Kevin D. ; Holmes, Jeffrey W. ; Konofagou, Elisa E.
Author_Institution
Columbia Univ., New York
Volume
54
Issue
11
fYear
2007
Firstpage
2233
Lastpage
2245
Abstract
Myocardial elastography (ME), a radio frequency (RF)-based speckle tracking technique with one-dimensional (1-D) cross correlation and novel recorrelation methods in a 2-D search was proposed to estimate and fully image 2-1) transmural deformation field and to detect abnormal cardiac function. A theoretical framework was first developed in order to evaluate the performance of 2-D myocardial elastography based on a previously developed 3-D finite-element model of the canine left ventricle. A normal (control) and an ischemic (left-circumflex, LCx) model, which more completely represented myocardial deformation than a kinematic model, were considered. A 2-D convolu-tional image formation model was first used to generate RF signals for quality assessment of ME in the normal and ischemic cases. A 3-D image formation model was further developed to investigate the effect of the out-of-plane motion on the 2-D, in-plane motion estimation. Both orthogonal, in-plane displacement components (i.e., lateral and axial) between consecutive RF frames were iteratively estimated. All the estimated incremental 2-D displacements from end-diastole (ED) to end-systole (ES) were then accumulated to acquire the cumulative 2-D displacements, which were further used to calculate the cumulative 2-D systolic finite strains. Furthermore, the cumulative systolic radial and circumferential strains, which were angle-and frame-rate independent, were obtained from the 2-D finite-strain components and imaged in full view to detect the ischemic region. We also explored the theoretical understanding of the limitations of our technique for the accurate depiction of disease and validated it in vivo against tagged magnetic resonance imaging (tMRI) in the case of a normal human myocardium in a 2-D short-axis (SA) echocardiographic view. The theoretical framework succeeded in demonstrating that the 2-D myocardial elastography technique was a reliable tool for the complete estimation and depiction of the in-p- - lane myocardial deformation field as well as for accurate identification of pathological mechanical function using established finite-element, left-ventricular canine models. In a preliminary study, the 2-D myocardial elastography was shown capable of imaging myocardial deformation comparable to equivalent tMRI estimates in a clinical setting.
Keywords
biomedical MRI; deformation; diseases; echocardiography; finite element analysis; haemodynamics; iterative methods; medical image processing; motion estimation; muscle; 2-D convolutional image formation model; 2-D systolic finite strains; 3-D finite-element model; abnormal cardiac function; canine left ventricle; disease; echocardiography; end-diastole; end-systole; in-plane displacement; in-plane motion estimation; iterative estimation; left-ventricular canine models; magnetic resonance imaging; myocardial elastography; myocardium; one-dimensional cross correlation; out-of-plane motion; radio frequency-based speckle tracking technique; recorrelation methods; schemia; transmural deformation; Deformable models; Finite element methods; Frequency estimation; In vivo; Kinematics; Myocardium; Quality assessment; Radio frequency; Signal generators; Speckle; Algorithms; Echocardiography, Three-Dimensional; Elasticity; Elasticity Imaging Techniques; Humans; Image Enhancement; Image Interpretation, Computer-Assisted; Models, Cardiovascular; Myocardial Ischemia; Quality Assurance, Health Care; Reproducibility of Results; Sensitivity and Specificity; Stress, Mechanical; Ventricular Dysfunction, Left;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2007.528
Filename
4399698
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