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PMID: 39270532 Published · ppublish English Journal Article

An automated and time-efficient framework for simulation of coronary blood flow under steady and pulsatile conditions.

Computer methods and programs in biomedicine ·Vol. 257 ·2024-12-00 ·页码 108415

Nannini G, Saitta S, Mariani L, Maragna R, Baggiano A, Mushtaq S, Pontone G, Redaelli A

Abstract

Invasive fractional flow reserve (FFR) measurement is the gold standard method for coronary artery disease (CAD) diagnosis. FFR-CT exploits computational fluid dynamics (CFD) for non-invasive evaluation of FFR, simulating coronary flow in virtual geometries reconstructed from computed tomography (CT), but suffers from cost-intensive computing process and uncertainties in the definition of patient specific boundary conditions (BCs). In this work, we investigated the use of time-averaged steady BCs, compared to pulsatile to reduce the computational time and deployed a self-adjusting method for the tuning of BCs to patient-specific clinical data. 133 coronary arteries were reconstructed form CT images of patients suffering from CAD. For each vessel, invasive FFR was measured. After segmentation, the geometries were prepared for CFD simulation by clipping the outlets and discretizing into tetrahedral mesh. Steady BCs were defined in two steps: (i) rest BCs were extrapolated from clinical and image-derived data; (ii) hyperemic BCs were computed from resting conditions. Flow rate was iteratively adjusted during the simulation, until patient's aortic pressure was matched. Pulsatile BCs were defined exploiting the convergence values of steady BCs. After CFD simulation, lesion-specific hemodynamic indexes were computed and compared between group of patients for which surgery was indicated and not. The whole pipeline was implemented as a straightforward process, in which each single step is performed automatically. Steady and pulsatile FFR-CT yielded a strong correlation (r = 0.988, p < 0.001) and correlated with invasive FFR (r = 0.797, p < 0.001). The per-point difference between the pressure and FFR-CT field predicted by the two methods was below 1 % and 2 %, respectively. Both approaches exhibited a good diagnostic performance: accuracy was 0.860 and 0.864, the AUC was 0.923 and 0.912, for steady and pulsatile case, respectively. The computational time required by steady BCs CFD was approximatively 30-folds lower than pulsatile case. This work shows the feasibility of using steady BCs CFD for computing the FFR-CT in coronary arteries, as well as its computational and diagnostic performance within a fully automated pipeline.

Keywords
Computational fluid dynamics Computed tomography Coronary artery FFR FFR-CT Fractional flow reserve
MeSH 主题词
Humans Pulsatile Flow Fractional Flow Reserve, Myocardial Coronary Artery Disease/physiopathology,diagnostic imaging Computer Simulation Coronary Vessels/diagnostic imaging Male Coronary Circulation/physiology Female Models, Cardiovascular Middle Aged Hemodynamics Aged Tomography, X-Ray Computed Hydrodynamics Automation
作者与单位
共 8 位作者,点击展开单位 / ORCID
Nannini Guido
Department of Electronics Information and Bioengineering, Politecnico di Milano, Milan, Italy. Electronic address: [email protected].
Saitta Simone
Department of Electronics Information and Bioengineering, Politecnico di Milano, Milan, Italy.
Mariani Luca
Department of Electronics Information and Bioengineering, Politecnico di Milano, Milan, Italy.
Maragna Riccardo
Department of Perioperative Cardiology and Cardiovascular Imaging D, Centro Cardiologico Monzino IRCCS, Milan, Italy.
Baggiano Andrea
Department of Perioperative Cardiology and Cardiovascular Imaging D, Centro Cardiologico Monzino IRCCS, Milan, Italy; Department of Clinical Sciences and Community Health, University of Milan, Milan, Italy.
Mushtaq Saima
Department of Perioperative Cardiology and Cardiovascular Imaging D, Centro Cardiologico Monzino IRCCS, Milan, Italy.
Pontone Gianluca
Department of Perioperative Cardiology and Cardiovascular Imaging D, Centro Cardiologico Monzino IRCCS, Milan, Italy; Department of Biomedical, Surgical and Dental Sciences, University of Milan, Milan, Italy.
Redaelli Alberto
Department of Electronics Information and Bioengineering, Politecnico di Milano, Milan, Italy.
Article Info
Journal
Computer methods and programs in biomedicine
Abbr.
Comput Methods Programs Biomed
ISSN
1872-7565
Corresponding email
Published
2024-12-00
电子出版
2024-00-06
页码
108415
Language
English
Country/Region
Ireland
NLM ID
8506513
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