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Related Concept Videos

Imaging Studies for Cardiovascular System V: CT01:28

Imaging Studies for Cardiovascular System V: CT

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Cardiac computed tomography (CT) scanning is an advanced cardiac imaging technique that utilizes CT technology, with or without intravenous (IV) contrast, to produce accurate cross-sectional virtual slices of specific areas of the heart, coronary circulation, and major blood vessels such as the aorta, pulmonary veins, and arteries. The computer processes these slices to generate three-dimensional images. Multidetector CT (MDCT) is a rapid form of CT scanning that captures multiple slices...
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Multi-patient study for coronary vulnerable plaque model comparisons: 2D/3D and fluid-structure interaction

Qingyu Wang1, Dalin Tang2,3, Liang Wang1

  • 1School of Biological Science and Medical Engineering, Southeast University, Nanjing, 210096, China.

Biomechanics and Modeling in Mechanobiology
|March 24, 2021
PubMed
Summary

Computational models for atherosclerotic plaque analysis show significant variations. Structure-only models offer good approximations for plaque wall stress/strain (PWS/PWSn), saving computational time.

Keywords:
Models comparisonPatient-specific modelVH-IVUSVulnerable plaque

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Area of Science:

  • Biomedical Engineering
  • Computational Mechanics
  • Cardiovascular Research

Background:

  • Image-based computational models are crucial for analyzing atherosclerotic plaque progression and vulnerability.
  • Quantifying prediction differences across multi-patient computational models remains a challenge.

Purpose of the Study:

  • To compare various computational models for plaque analysis.
  • To quantify the impact of 2D simplification, circumferential shrink, fluid-structure interactions (FSI), and cyclic bending on plaque wall stress/strain (PWS/PWSn) and flow shear stress (FSS).

Main Methods:

  • Acquired in vivo intravascular ultrasound (IVUS) coronary plaque data from seven patients.
  • Constructed seven 2D/3D models with and without specific factors (shrink, bending, FSI) for each patient.
  • Compared PWS/PWSn and FSS calculations across models using patient data (388 slices).

Main Results:

  • 2D models without shrink overestimated PWS by 17.26% compared to those with shrink.
  • 3D FSI models with cyclic bending showed PWS changes of 15.07%-49.52% (avg. 30.13%) at high curvature areas.
  • Flow-only models predicted higher FSS (4.02%-11.29%) than full FSI models; PWS/PWSn differences between FSI and structure-only models were minimal (4.38%, 1.78%).

Conclusions:

  • Model differences in plaque analysis exhibit patient-specific variations.
  • Structure-only models provide accurate approximations for PWS/PWSn, offering computational efficiency.
  • FSI and flow-only model differences are more pronounced for minimum FSS, relevant to plaque progression.