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Torii, R.

Publications and source records attributed to Torii, R..

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Comparison of shear stress patterns by the established and advanced reconstruction method incorporating side branches to predict plaque progression

BackgroundComplete vessel reconstruction (CVR) with incorporation of side branches is essential for accurate evaluation of wall shear stress (WSS) distribution. However, CVR is time consuming and blood flow simulation is computationally expensive, while there is no evidence that WSS computed by CVR, enables better prediction of disease progression compared to WSS derived from the conventional single vessel reconstruction (SVR). We aim to compare the WSS in models reconstructed using the CVR and SVR methods and examine its ability to predict disease progression. MethodsPatients who had baseline and 13-months follow-up intravascular ultrasound (IVUS) imaging (n=19 vessels), and with neoatherosclerotic lesions (n=13 vessels) on optical coherence tomography (OCT) were included in the present analysis. All the studied vessels had at least one side branch with diameter >1mm. 3-dimensional (3D) CVR and SVR were performed and time averaged (TAWSS) and multidirectional WSS were computed using pulsatile blood flow simulation and the performance of both methods in predicting disease progression in IVUS and OCT models were assessed. ResultsThe incorporation of side branches in 3D geometry resulted in lower TAWSS in the IVUS (0.821 vs 1.698Pa, p<0.001) and OCT-based reconstructions (0.682 vs 1.325Pa, p<0.001) and influenced the multidirectional WSS distribution. In native segments, WSS metrics estimated by the CVR enabled better prediction of the lumen and plaque area and burden at follow-up than SVR and disease progression defined as decrease in lumen area and increase in plaque burden (AUC CVR 0.712 vs SVR 0.554). In stented segments, multidirectional WSS was associated with neointima area in both CVR and SVR methods, but TAWSS was only a predictor of neointima area in the CVR method. ConclusionsThe incorporation of side branches in vessel reconstruction influences WSS distribution and enables more accurate prediction of disease progression in native and stented segments than SVR modelling. HighlightsO_LIComplete vessel reconstruction (CVR) with incorporation of vessel side branches has been proposed for accurate evaluation of wall shear stress (WSS) distribution compared to the traditional single vessel reconstruction (SVR) method; however, there are no studies comparing the performance of the WSS metrics derived by these methods in predicting atherosclerotic evolution. C_LIO_LIIn vessels with large side branches, the incorporation of the side branches in the vessel geometry reconstructed from angiographic and intravascular imaging data resulted in lower time averaged wall shear stress (TAWSS) and influenced the multidirectional WSS estimations compared to the models reconstructed without the side branches. C_LIO_LIThe WSS metrics estimated in the CVR models enabled better prediction of atherosclerotic disease progression at 13-months follow-up on IVUS than the WSS derived by the SVR. C_LIO_LIIn stented vessels, all the WSS metrics in the CVR and the multidirectional WSS in SVR were associated with neointima tissue development; however, both approaches showed limited efficacy in predicting neointima proliferation. C_LI

bioengineering↗

Blood flow modeling under LVAD physiology. From global circulation to local hemodynamics

This document presents the modeling strategy to address the in-silico study of different LVAD patho-physiological scenarios. The proposed approach employs a closed-loop lumped-parameter compartmental representation of the global circulation in the cardiovascular system (CVS). The CVS is coupled to a HeartMate 3 LVAD, and different cardiovascular conditions are proposed by modification of model parameters. Once the simulation for these conditions are performed, the cardiac function is analyzed in detail, and the global circulation model delivers flow rate waveforms which are employed as boundary conditions in a 3D hemodynamic simulation. This local circulation model is built using a patient-specific geometry of the aortic arch, containing 7 inlet/outlet boundaries, namely: LVAD cannula, aortic root, left and right subclavian arteries, left and right common carotid arteries and thoracic aorta. This model is exploited to investigate the impact of global cardiovascular conditions in the local hemodynamic features, particularly the wall shear stress (WSS) in different spatial regions.

bioengineering↗