Impact of coronary tortuosity on the artery hemodynamics

dc.contributor.authorBuradi, A.
dc.contributor.authorMahalingam, A.
dc.date.accessioned2026-02-05T09:29:17Z
dc.date.issued2020
dc.description.abstractThe presence of tortuosity in coronary artery (CA) affects the local wall shear stress (WSS) which is an influencing hemodynamic descriptor (HD) for the development of atherosclerotic sites. To conduct a morphological parametric study in coronary arteries (CAs), several idealized tortuous artery models were obtained by varying three morphological indices namely, curvature radius (CR), distance between two bends (DBB) and the angle of bend (AoB). Computational fluid dynamics methodology with multiphase mixture theory is used to explore the effect of coronary tortuosity on various WSS based hemodynamic descriptors (HDs) namely, time-averaged WSS, oscillatory shear index, time-averaged WSS gradient, endothelial cell activation potential and the relative residence time that are used to determine the vulnerable locations for the onset of thrombosis and atherosclerosis. Our findings suggest that all the tortuosity morphological indices, CR, DBB and AoB have significant influence on the distributions of various HDs and hemodynamics. It is also observed that atherosclerosis prone sites were witnessed at the inner artery wall at downstream regions of the bend section 1 and bend section 2 in all the tortuous artery models studied and found to increase as the CR and DBB were reduced however, found to increase as the AoB is increased. Hence, severe coronary tortuosity in CAs with small CR, small DBB and higher AoB may have lower WSS zones at inner bend sections which promote atherosclerosis plaque progression. The analysis obtained from this multiphase blood flow study can be employed potentially in the clinical assessment on the severity of atherosclerosis lesions as well as in understanding the underlying mechanisms of localization and formation of atherosclerotic plaques. © 2019 Nalecz Institute of Biocybernetics and Biomedical Engineering of the Polish Academy of Sciences
dc.identifier.citationBiocybernetics and Biomedical Engineering, 2020, 40, 1, pp. 126-147
dc.identifier.issn2085216
dc.identifier.urihttps://doi.org/10.1016/j.bbe.2019.02.005
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/24201
dc.publisherElsevier Sp. z o.o.
dc.subjectangle of bend
dc.subjectartery wall
dc.subjectArticle
dc.subjectblood vessel parameters
dc.subjectblood viscosity
dc.subjectcell activation
dc.subjectclinical assessment
dc.subjectcomputational fluid dynamics
dc.subjectcomputer model
dc.subjectcoronary artery
dc.subjectcoronary artery atherosclerosis
dc.subjectcoronary artery blood flow
dc.subjectcoronary artery thrombosis
dc.subjectcoronary artery tortuosity
dc.subjectcoronary hemodynamics
dc.subjectcurvature radius
dc.subjectdistance between two bend
dc.subjectendothelium cell
dc.subjecterythrocyte
dc.subjectheart cycle
dc.subjectoscillatory shear index
dc.subjectpriority journal
dc.subjectretention time
dc.subjectshear stress
dc.subjecttime averaged wall shear stress
dc.subjectwall shear stress gradient
dc.titleImpact of coronary tortuosity on the artery hemodynamics

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