Literature DB >> 11870940

Four-dimensional analysis of cyclic changes in coronary artery shape.

Robert Liao1, S-Y James Chen, John C Messenger, Bertron M Groves, J E B Burchenal, John D Carroll.   

Abstract

The objective of this study was to derive a method for quantifying the dynamic geometry of coronary arteries. Coronary artery geometry plays an important role in atherosclerosis. Coronary artery geometry also influences the performance of coronary interventions. Conversely, implantation of stents may alter coronary artery geometry. Clinical tools to define vessel shape have not been readily available. Using a Frenet-Serret curvature analysis applied to 3D reconstruction data derived from standard coronary angiograms, 21 coronary arteries were analyzed at end-diastole (ED) and end-systole (ES). Vessels were divided anatomically: type 1 consisted of vessels lying in the AV groove (left circumflex, right coronary) and type 2 consisted of vessels overlying actively contracting myocardium (left anterior descending, diagonal, obtuse marginal, right ventricular marginal, posterior descending, posterolateral). Vessel segments were analyzed by assessing the changes in curvature, torsion, and discrete flexion points (FPs), areas of systolic bending in the arterial contour. The curvature from ED to ES of type 1 vessels was unchanged (-0.02 +/- 0.03 cm(-1)), while the curvature change of type 2 vessels showed a 38% increase (0.33 +/- 0.04 cm(-1); P < 0.001). Type 1 vessels had fewer FPs per vessel than type 2 vessels (0.38 +/- 0.18 and 2.40 +/- 0.23 FP/vessel, respectively; P < 0.001). FPs were more common in distal segments and branch vessels. A method to quantify cyclic changes in coronary artery shape was applied to 3D data sets derived from standard coronary angiograms. Coronary arteries undergo a cyclic change in shape resulting in changes in overall curvature as well as formation of discrete flexion points. These changes in vessel shape are asymmetrically distributed in coronary arteries. Copyright 2002 Wiley-Liss, Inc.

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Year:  2002        PMID: 11870940     DOI: 10.1002/ccd.10106

Source DB:  PubMed          Journal:  Catheter Cardiovasc Interv        ISSN: 1522-1946            Impact factor:   2.692


  5 in total

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Authors:  Kay D Everett; Claire Conway; Gerard J Desany; Brian L Baker; Gilwoo Choi; Charles A Taylor; Elazer R Edelman
Journal:  Ann Biomed Eng       Date:  2015-10-14       Impact factor: 3.934

2.  Three-dimensional geometry of the human carotid artery.

Authors:  Alexey V Kamenskiy; Jason N MacTaggart; Iraklis I Pipinos; Jai Bikhchandani; Yuris A Dzenis
Journal:  J Biomech Eng       Date:  2012-06       Impact factor: 2.097

3.  Mechanical response of cardiovascular stents under vascular dynamic bending.

Authors:  Jiang Xu; Jie Yang; Nan Huang; Christopher Uhl; Yihua Zhou; Yaling Liu
Journal:  Biomed Eng Online       Date:  2016-02-20       Impact factor: 2.819

4.  Three-dimensional evaluation of the spatial morphology of stented coronary artery segments in relation to restenosis.

Authors:  Áron Üveges; Csaba Jenei; Tibor Kiss; Zoltán Szegedi; Balázs Tar; Gábor Tamás Szabó; Dániel Czuriga; Zsolt Kőszegi
Journal:  Int J Cardiovasc Imaging       Date:  2019-05-24       Impact factor: 2.357

5.  Coronary Artery Radial Deformation and Velocity in Native and Stented Arteries.

Authors:  Logan S Schwarzman; Decebal S Griza; Leon J Frazin; Mladen I Vidovich; Mayank M Kansal
Journal:  J Interv Cardiol       Date:  2022-03-26       Impact factor: 2.279

  5 in total

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