4.6 Article

Towards a Digital Twin of Coronary Stenting: A Suitable and Validated Image-Based Approach for Mimicking Patient-Specific Coronary Arteries

Journal

ELECTRONICS
Volume 11, Issue 3, Pages -

Publisher

MDPI
DOI: 10.3390/electronics11030502

Keywords

coronary stent; stent deployment simulation; finite element analysis; patient-specific cases; validation; artery model; 3D reconstruction; plaque characterization

Funding

  1. European Union [777119]
  2. MIUR [FISR-FISR2019_03221 CECOMES]

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The study proposes a method for developing a patient-specific artery model for stenting simulations, using 3D reconstruction based on clinical imaging. The effectiveness of the artery modeling method was tested by simulating stenting procedures of two clinical cases and comparing the results with the actual lumen area of the stented vessel.
Considering the field of application involving stent deployment simulations, the exploitation of a digital twin of coronary stenting that can reliably mimic the patient-specific clinical reality could lead to improvements in individual treatments. A starting step to pursue this goal is the development of simple, but at the same time, robust and effective computational methods to obtain a good compromise between the accuracy of the description of physical phenomena and computational costs. Specifically, this work proposes an approach for the development of a patient-specific artery model to be used in stenting simulations. The finite element model was generated through a 3D reconstruction based on the clinical imaging (coronary Optical Coherence Tomography (OCT) and angiography) acquired on the pre-treatment patient. From a mechanical point of view, the coronary wall was described with a suitable phenomenological model, which is consistent with more complex constitutive approaches and accounts for the in vivo pressurization and axial pre-stretch. The effectiveness of this artery modeling method was tested by reproducing in silico the stenting procedures of two clinical cases and comparing the computational results with the in vivo lumen area of the stented vessel.

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