DocumentCode
3121953
Title
Towards a Biomechanical-Based Method for Assessing Myocardial Tissue Viability
Author
Linte, Cristian A. ; Wierzbicki, Marcin ; Aladl, Usaf ; Peters, Terry M. ; Samani, Abbas
Author_Institution
Biomed. Eng., Univ. of Western Ontario, London, Ont.
fYear
2006
fDate
Aug. 30 2006-Sept. 3 2006
Firstpage
2884
Lastpage
2887
Abstract
This work presents the first steps towards the development and implementation of a novel 3D biomechanical-based method for assessing the viability of myocardial tissue, with particular interest for its application in myocardial infarction (MI) diagnosis. This assessment technique quantifies the myocardial contraction forces developed within the ventricular myofibrils in response to the electrophysiological stimulus. In this manuscript we provide a 3D finite element (FE) formulation of a contraction force reconstruction algorithm based on an inverse problem solution of linear elasticity, along with its implementation using clinical data. This algorithm has been applied to patient-specific models obtained by extracting anatomical features from high-resolution, high-contrast magnetic resonance (MR) cardiac images. The input consists of motion information extracted by nonrigid registration of the mid-diastole reference image to the remaining images of the 4D data set, acquired using ECG-gating throughout the cardiac cycle. The result consists of a display-map of the contraction force distribution superimposed on the anatomical ventricle model, which allows the clinician to identify regions of low contractility in the myocardium
Keywords
biomechanics; biomedical MRI; cardiovascular system; elasticity; electrocardiography; feature extraction; finite element analysis; image reconstruction; image registration; inverse problems; medical image processing; 3D biomechanical-based method; 3D finite element formulation; ECG-gated imaging; MRI; anatomical feature extraction; anatomical ventricle model; electrophysiological stimulus; high-contrast magnetic resonance cardiac images; inverse problem; linear elasticity; mid-diastole reference image; motion information extraction; myocardial contraction force reconstruction algorithm; myocardial infarction diagnosis; myocardial tissue viability assessment; nonrigid registration; patient-specific model; ventricular myofibrils; Biomedical engineering; Biomedical imaging; Cities and towns; Data mining; High-resolution imaging; Image segmentation; Myocardium; Physiology; Positron emission tomography; Strain measurement; cardiac imaging; cardiovascular biomechanics; finite element modeling; myocardial viability assessment;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society, 2006. EMBS '06. 28th Annual International Conference of the IEEE
Conference_Location
New York, NY
ISSN
1557-170X
Print_ISBN
1-4244-0032-5
Electronic_ISBN
1557-170X
Type
conf
DOI
10.1109/IEMBS.2006.260523
Filename
4462399
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