TY - JOUR
T1 - A framework for computational fluid dynamic analyses of patient-specific stented coronary arteries from optical coherence tomography images
AU - Migliori, Susanna
AU - Chiastra, Claudio
AU - Bologna, Marco
AU - Montin, Eros
AU - Dubini, Gabriele
AU - Aurigemma, Cristina
AU - Fedele, Roberto
AU - Burzotta, Francesco
AU - Mainardi, Luca
AU - Migliavacca, Francesco
PY - 2017
Y1 - 2017
N2 - The clinical challenge of percutaneous coronary interventions (PCI) is highly dependent on the recognition of the coronary anatomy of each individual. The classic imaging modality used for PCI is angiography, but advanced imaging techniques that are routinely performed during PCI, like optical coherence tomography (OCT), may provide detailed knowledge of the pre-intervention vessel anatomy as well as the post-procedural assessment of the specific stent-to-vessel interactions. Computational fluid dynamics (CFD) is an emerging investigational tool in the setting of optimization of PCI results. In this study, an OCT-based reconstruction method was developed for the execution of CFD simulations of patient-specific coronary artery models which include the actual geometry of the implanted stent. The method was applied to a rigid phantom resembling a stented segment of the left anterior descending coronary artery. The segmentation algorithm was validated against manual segmentation. A strong correlation was found between automatic and manual segmentation of lumen in terms of area values. Similarity indices resulted >96% for the lumen segmentation and >77% for the stent strut segmentation. The 3D reconstruction achieved for the stented phantom was also assessed with the geometry provided by X-ray computed micro tomography scan, used as ground truth, and showed the incidence of distortion from catheter-based imaging techniques. The 3D reconstruction was successfully used to perform CFD analyses, demonstrating a great potential for patient-specific investigations. In conclusion, OCT may represent a reliable source for patient-specific CFD analyses which may be optimized using dedicated automatic segmentation algorithms.
AB - The clinical challenge of percutaneous coronary interventions (PCI) is highly dependent on the recognition of the coronary anatomy of each individual. The classic imaging modality used for PCI is angiography, but advanced imaging techniques that are routinely performed during PCI, like optical coherence tomography (OCT), may provide detailed knowledge of the pre-intervention vessel anatomy as well as the post-procedural assessment of the specific stent-to-vessel interactions. Computational fluid dynamics (CFD) is an emerging investigational tool in the setting of optimization of PCI results. In this study, an OCT-based reconstruction method was developed for the execution of CFD simulations of patient-specific coronary artery models which include the actual geometry of the implanted stent. The method was applied to a rigid phantom resembling a stented segment of the left anterior descending coronary artery. The segmentation algorithm was validated against manual segmentation. A strong correlation was found between automatic and manual segmentation of lumen in terms of area values. Similarity indices resulted >96% for the lumen segmentation and >77% for the stent strut segmentation. The 3D reconstruction achieved for the stented phantom was also assessed with the geometry provided by X-ray computed micro tomography scan, used as ground truth, and showed the incidence of distortion from catheter-based imaging techniques. The 3D reconstruction was successfully used to perform CFD analyses, demonstrating a great potential for patient-specific investigations. In conclusion, OCT may represent a reliable source for patient-specific CFD analyses which may be optimized using dedicated automatic segmentation algorithms.
KW - Biomedical Engineering
KW - Biophysics
KW - Computational fluid dynamics
KW - Coronary artery
KW - Image segmentation
KW - Optical coherence tomography
KW - Stent
KW - X-ray computed micro tomography
KW - Biomedical Engineering
KW - Biophysics
KW - Computational fluid dynamics
KW - Coronary artery
KW - Image segmentation
KW - Optical coherence tomography
KW - Stent
KW - X-ray computed micro tomography
UR - http://hdl.handle.net/10807/111351
UR - http://www.elsevier.com/locate/medengphy
U2 - 10.1016/j.medengphy.2017.06.027
DO - 10.1016/j.medengphy.2017.06.027
M3 - Article
SN - 1350-4533
VL - 47
SP - 105
EP - 116
JO - MEDICAL ENGINEERING & PHYSICS
JF - MEDICAL ENGINEERING & PHYSICS
ER -