Accurate cap thickness and stress/strain quantifications are of fundamental importance for vulnerable plaque research. Virtual histology intravascular ultrasound (VH-IVUS) sets cap thickness to zero when cap is under resolution limit and IVUS does not see it. An innovative modeling approach combining IVUS and optical coherence tomography (OCT) is introduced for cap thickness quantification and more accurate cap stress/strain calculations. In vivo IVUS and OCT coronary plaque data were acquired with informed consent obtained. IVUS and OCT images were merged to form the IVUS + OCT data set, with biplane angiography providing three-dimensional (3D) vessel curvature. For components where VH-IVUS set zero cap thickness (i.e., no cap), a cap was added with minimum cap thickness set as 50 and 180 μm to generate IVUS50 and IVUS180 data sets for model construction, respectively. 3D fluid–structure interaction (FSI) models based on IVUS + OCT, IVUS50, and IVUS180 data sets were constructed to investigate cap thickness impact on stress/strain calculations. Compared to IVUS + OCT, IVUS50 underestimated mean cap thickness (27 slices) by 34.5%, overestimated mean cap stress by 45.8%, (96.4 versus 66.1 kPa). IVUS50 maximum cap stress was 59.2% higher than that from IVUS + OCT model (564.2 versus 354.5 kPa). Differences between IVUS and IVUS + OCT models for cap strain and flow shear stress (FSS) were modest (cap strain <12%; FSS <6%). IVUS + OCT data and models could provide more accurate cap thickness and stress/strain calculations which will serve as basis for further plaque investigations.
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April 2018
Research-Article
Combining IVUS and Optical Coherence Tomography for More Accurate Coronary Cap Thickness Quantification and Stress/Strain Calculations: A Patient-Specific Three-Dimensional Fluid-Structure Interaction Modeling Approach
Xiaoya Guo,
Xiaoya Guo
Department of Mathematics,
Southeast University,
Nanjing 210096, China
Southeast University,
Nanjing 210096, China
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Don P. Giddens,
Don P. Giddens
Department of Medicine,
Emory University School of Medicine,
Atlanta, GA 30307;
Emory University School of Medicine,
Atlanta, GA 30307;
The Wallace H. Coulter Department
of Biomedical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
of Biomedical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
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David Molony,
David Molony
Department of Medicine,
Emory University School of Medicine,
Atlanta, GA 30307
Emory University School of Medicine,
Atlanta, GA 30307
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Chun Yang,
Chun Yang
Mathematical Sciences Department,
Worcester Polytechnic Institute,
Worcester, MA 01609
Worcester Polytechnic Institute,
Worcester, MA 01609
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Habib Samady,
Habib Samady
Department of Medicine,
Emory University School of Medicine,
Atlanta, GA 30307
Emory University School of Medicine,
Atlanta, GA 30307
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Jie Zheng,
Jie Zheng
Mallinckrodt Institute of Radiology,
Washington University,
St. Louis, MO 63110
Washington University,
St. Louis, MO 63110
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Gary S. Mintz,
Gary S. Mintz
The Cardiovascular Research Foundation,
Columbia University,
New York, NY 10022
Columbia University,
New York, NY 10022
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Akiko Maehara,
Akiko Maehara
The Cardiovascular Research Foundation,
Columbia University,
New York, NY 10022
Columbia University,
New York, NY 10022
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Liang Wang,
Liang Wang
Mathematical Sciences Department,
Worcester Polytechnic Institute,
Worcester, MA 01609
Worcester Polytechnic Institute,
Worcester, MA 01609
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Xuan Pei,
Xuan Pei
School of Biological Science
& Medical Engineering,
Southeast University,
Nanjing 210096, China
& Medical Engineering,
Southeast University,
Nanjing 210096, China
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Zhi-Yong Li,
Zhi-Yong Li
School of Biological Science
& Medical Engineering,
Southeast University,
Nanjing 210096, China
& Medical Engineering,
Southeast University,
Nanjing 210096, China
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Dalin Tang
Dalin Tang
Department of Mathematics,
Southeast University,
Nanjing 210096, China;
Southeast University,
Nanjing 210096, China;
Mathematical Sciences Department,
Worcester Polytechnic Institute,
Worcester, MA 01609
Worcester Polytechnic Institute,
Worcester, MA 01609
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Xiaoya Guo
Department of Mathematics,
Southeast University,
Nanjing 210096, China
Southeast University,
Nanjing 210096, China
Don P. Giddens
Department of Medicine,
Emory University School of Medicine,
Atlanta, GA 30307;
Emory University School of Medicine,
Atlanta, GA 30307;
The Wallace H. Coulter Department
of Biomedical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
of Biomedical Engineering,
Georgia Institute of Technology,
Atlanta, GA 30332
David Molony
Department of Medicine,
Emory University School of Medicine,
Atlanta, GA 30307
Emory University School of Medicine,
Atlanta, GA 30307
Chun Yang
Mathematical Sciences Department,
Worcester Polytechnic Institute,
Worcester, MA 01609
Worcester Polytechnic Institute,
Worcester, MA 01609
Habib Samady
Department of Medicine,
Emory University School of Medicine,
Atlanta, GA 30307
Emory University School of Medicine,
Atlanta, GA 30307
Jie Zheng
Mallinckrodt Institute of Radiology,
Washington University,
St. Louis, MO 63110
Washington University,
St. Louis, MO 63110
Gary S. Mintz
The Cardiovascular Research Foundation,
Columbia University,
New York, NY 10022
Columbia University,
New York, NY 10022
Akiko Maehara
The Cardiovascular Research Foundation,
Columbia University,
New York, NY 10022
Columbia University,
New York, NY 10022
Liang Wang
Mathematical Sciences Department,
Worcester Polytechnic Institute,
Worcester, MA 01609
Worcester Polytechnic Institute,
Worcester, MA 01609
Xuan Pei
School of Biological Science
& Medical Engineering,
Southeast University,
Nanjing 210096, China
& Medical Engineering,
Southeast University,
Nanjing 210096, China
Zhi-Yong Li
School of Biological Science
& Medical Engineering,
Southeast University,
Nanjing 210096, China
& Medical Engineering,
Southeast University,
Nanjing 210096, China
Dalin Tang
Department of Mathematics,
Southeast University,
Nanjing 210096, China;
Southeast University,
Nanjing 210096, China;
Mathematical Sciences Department,
Worcester Polytechnic Institute,
Worcester, MA 01609
Worcester Polytechnic Institute,
Worcester, MA 01609
1Corresponding author.
Manuscript received May 28, 2017; final manuscript received October 4, 2017; published online January 23, 2018. Assoc. Editor: Alison Marsden.
J Biomech Eng. Apr 2018, 140(4): 041005 (12 pages)
Published Online: January 23, 2018
Article history
Received:
May 28, 2017
Revised:
October 4, 2017
Citation
Guo, X., Giddens, D. P., Molony, D., Yang, C., Samady, H., Zheng, J., Mintz, G. S., Maehara, A., Wang, L., Pei, X., Li, Z., and Tang, D. (January 23, 2018). "Combining IVUS and Optical Coherence Tomography for More Accurate Coronary Cap Thickness Quantification and Stress/Strain Calculations: A Patient-Specific Three-Dimensional Fluid-Structure Interaction Modeling Approach." ASME. J Biomech Eng. April 2018; 140(4): 041005. https://doi.org/10.1115/1.4038263
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