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Get Free AccessTreatment of coronary bifurcation lesions remains an ongoing challenge for interventional cardiologists. Stenting of coronary bifurcations carries higher risk for in-stent restenosis, stent thrombosis, and recurrent clinical events. This review summarizes the current evidence regarding application and use of biomechanical modeling in the study of stent properties, local flow dynamics, and outcomes after percutaneous coronary interventions in bifurcation lesions. Biomechanical modeling of bifurcation stenting involves computational simulations and in vitro bench testing using subject-specific arterial geometries obtained from in vivo imaging. Biomechanical modeling has the potential to optimize stenting strategies and stent design, thereby reducing adverse outcomes. Large-scale clinical studies are needed to establish the translation of pre-clinical findings to the clinical arena.
Antonios Antoniadis, Peter Mortier, Ghassan S. Kassab, Gabriele Dubini, Nicolas Foin, Yoshinobu Murasato, Andreas A. Giannopoulos, Shengxian Tu, Kiyotaka Iwasaki, Yutaka Hikichi, Francesco Migliavacca, Claudio Chiastra, Jolanda J. Wentzel, Frank Gijsen, Johan H. C. Reiber, Peter Barlis, Patrick W. Serruys, Deepak L. Bhatt, Goran Stanković, Elazer R. Edelman, George D. Giannoglou, Yves Louvard, Yiannis S. Chatzizisis (2015). Biomechanical Modeling to Improve Coronary Artery Bifurcation Stenting. КАРДИОЛОГИЯ УЗБЕКИСТАНА, 8(10), pp. 1281-1296, DOI: 10.1016/j.jcin.2015.06.015.
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Type
Article
Year
2015
Authors
23
Datasets
0
Total Files
0
Language
English
Journal
КАРДИОЛОГИЯ УЗБЕКИСТАНА
DOI
10.1016/j.jcin.2015.06.015
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