DocumentCode
45059
Title
Image-Based Mechanical Analysis of Stent Deformation: Concept and Exemplary Implementation for Aortic Valve Stents
Author
Gessat, Michael ; Hopf, Raoul ; Pollok, Thomas ; Russ, Christoph ; Frauenfelder, Thomas ; Sundermann, Simon H. ; Hirsch, S. ; Mazza, Emanuelle ; Szekely, G. ; Falk, Volkmar
Author_Institution
Hybrid Lab. for Cardiovascular Technol., Univ. of Zurich, Zurich, Switzerland
Volume
61
Issue
1
fYear
2014
fDate
Jan. 2014
Firstpage
4
Lastpage
15
Abstract
An approach for extracting the radial force load on an implanted stent from medical images is proposed. To exemplify the approach, a system is presented which computes a radial force estimation from computer tomography images acquired from patients who underwent transcatheter aortic valve implantation (TAVI). The deformed shape of the implanted valve prosthesis´ Nitinol frame is extracted from the images. A set of displacement vectors is computed that parameterizes the observed deformation. An iterative relaxation algorithm is employed to adapt the information extracted from the images to a finite-element model of the stent, and the radial components of the interaction forces between the stent and the tissue are extracted. For the evaluation of the method, tests were run using the clinical data from 21 patients. Stent modeling and extraction of the radial forces were successful in 18 cases. Synthetic test cases were generated, in addition, for assessing the sensitivity to the measurement errors. In a sensitivity analysis, the geometric error of the stent reconstruction was below 0.3 mm, which is below the image resolution. The distribution of the radial forces was qualitatively and quantitatively reasonable. An uncertainty remains in the quantitative evaluation of the radial forces due to the uncertainty in defining a radial direction on the deformed stent. With our approach, the mechanical situation of TAVI stents after the implantation can be studied in vivo, which may help to understand the mechanisms that lead to the complications and improve stent design.
Keywords
biomechanics; computerised tomography; deformation; finite element analysis; medical image processing; stents; Nitinol frame; aortic valve stents; computer tomography images; finite element model; geometric error; image based mechanical analysis; medical images; prosthesis; radial force load; stent deformation; stent design; stent reconstruction; transcatheter aortic valve implantation; Calcium; Computational modeling; Force; Image reconstruction; Numerical models; Shape; Valves; Biomedical image processing; biomechanical simulation; biomedical imaging; finite element analysis; implants;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2013.2273496
Filename
6560362
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