Background: Atherosclerotic plaques may rupture without warning and cause acute cardiovascular syndromes such as heart attack and stroke. Methods to assess plaque vulnerability noninvasively and predict possible plaque rupture are urgently needed. Method: MRI-based three-dimensional unsteady models for human atherosclerotic plaques with multi-component plaque structure and fluid-structure interactions are introduced to perform mechanical analysis for human atherosclerotic plaques. Results: Stress variations on critical sites such as a thin cap in the plaque can be 300% higher than that at other normal sites. Large calcification block considerably changes stress/strain distributions. Stiffness variations of plaque components (50% reduction or 100% increase) may affect maximal stress values by 20–50 %. Plaque cap erosion causes almost no change on maximal stress level at the cap, but leads to 50% increase in maximal strain value. Conclusions: Effects caused by atherosclerotic plaque structure, cap thickness and erosion, material properties, and pulsating pressure conditions on stress/strain distributions in the plaque are quantified by extensive computational case studies and parameter evaluations. Computational mechanical analysis has good potential to improve accuracy of plaque vulnerability assessment.
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December 2005
Technical Papers
Quantifying Effects of Plaque Structure and Material Properties on Stress Distributions in Human Atherosclerotic Plaques Using 3D FSI Models
Dalin Tang,
Dalin Tang
Mathematical Sciences Department,
Worcester Polytechnic Institute
, Worcester, MA 01609
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Chun Yang,
Chun Yang
Mathematical Sciences Department,
Worcester Polytechnic Institute
, Worcester, MA 01609 and Mathematics Department, Beijing Normal University
, Beijing, China
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Jie Zheng,
Jie Zheng
Mallinkcrodt Institute of Radiology,
Washington University
, St. Louis, MO 63110
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Pamela K. Woodard,
Pamela K. Woodard
Mallinkcrodt Institute of Radiology,
Washington University
, St. Louis, MO 63110
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Jeffrey E. Saffitz,
Jeffrey E. Saffitz
Department of Pathology,
Washington University
, St. Louis, MO 63110
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Gregorio A. Sicard,
Gregorio A. Sicard
Department of Surgery,
Washington University
, St. Louis, MO 63110
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Thomas K. Pilgram,
Thomas K. Pilgram
Mallinkcrodt Institute of Radiology,
Washington University
, St. Louis, MO 63110
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Chun Yuan
Chun Yuan
Department of Radiology,
University of Washington
, Seattle, WA 98195
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Dalin Tang
Mathematical Sciences Department,
Worcester Polytechnic Institute
, Worcester, MA 01609
Chun Yang
Mathematical Sciences Department,
Worcester Polytechnic Institute
, Worcester, MA 01609 and Mathematics Department, Beijing Normal University
, Beijing, China
Jie Zheng
Mallinkcrodt Institute of Radiology,
Washington University
, St. Louis, MO 63110
Pamela K. Woodard
Mallinkcrodt Institute of Radiology,
Washington University
, St. Louis, MO 63110
Jeffrey E. Saffitz
Department of Pathology,
Washington University
, St. Louis, MO 63110
Gregorio A. Sicard
Department of Surgery,
Washington University
, St. Louis, MO 63110
Thomas K. Pilgram
Mallinkcrodt Institute of Radiology,
Washington University
, St. Louis, MO 63110
Chun Yuan
Department of Radiology,
University of Washington
, Seattle, WA 98195J Biomech Eng. Dec 2005, 127(7): 1185-1194 (10 pages)
Published Online: July 29, 2005
Article history
Received:
October 22, 2004
Revised:
July 7, 2005
Accepted:
July 29, 2005
Citation
Tang, D., Yang, C., Zheng, J., Woodard, P. K., Saffitz, J. E., Sicard, G. A., Pilgram, T. K., and Yuan, C. (July 29, 2005). "Quantifying Effects of Plaque Structure and Material Properties on Stress Distributions in Human Atherosclerotic Plaques Using 3D FSI Models." ASME. J Biomech Eng. December 2005; 127(7): 1185–1194. https://doi.org/10.1115/1.2073668
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