Time-efficient patient-specific quantification of regional carotid artery fluid dynamics and spatial correlation with plaque burden.
暂无分享,去创建一个
John F LaDisa | Leanne Harmann | Robert Prost | Osama Zaidat | Raymond Q Migrino | R. Prost | J. LaDisa | R. Migrino | O. Zaidat | M. Bowers | Leanne M. Harmann | A. Doppalapudi | Tayyab Mohyuddin | Mark Bowers | Anil Vamsi Doppalapudi | Tayyab Mohyuddin | J. Ladisa
[1] A. Golby,et al. Detection of carotid stenosis. From NASCET results to clinical practice. , 1995, Stroke.
[2] Robert W. Dutton,et al. A Software Framework for Creating Patient Specific Geometric Models from Medical Imaging Data for Simulation Based Medical Planning of Vascular Surgery , 2001, MICCAI.
[3] P Segers,et al. Use of pulse pressure method for estimating total arterial compliance in vivo. , 1999, American journal of physiology. Heart and circulatory physiology.
[4] Yan Lin,et al. Preliminary study of hemodynamics in human carotid bifurcation by computational fluid dynamics combined with magnetic resonance angiography , 2007, Acta radiologica.
[5] D. Birchall,et al. Analysis of haemodynamic disturbance in the atherosclerotic carotid artery using computational fluid dynamics , 2006, European Radiology.
[6] A. Hughes,et al. Reproducibility study of 3D geometrical reconstruction of the human carotid bifurcation from magnetic resonance images , 2003, Magnetic resonance in medicine.
[7] L. Antiga,et al. Inlet conditions for image-based CFD models of the carotid bifurcation: is it reasonable to assume fully developed flow? , 2006, Journal of biomechanical engineering.
[8] L. Antiga,et al. Geometry of the Carotid Bifurcation Predicts Its Exposure to Disturbed Flow , 2008, Stroke.
[9] L. Antiga,et al. On the overestimation of early wall thickening at the carotid bulb by black blood MRI, with implications for coronary and vulnerable plaque imaging , 2008, Magnetic resonance in medicine.
[10] B. Williams. Mechanical influences on vascular smooth muscle cell function , 1998, Journal of hypertension.
[11] D. Holdsworth,et al. Characterization of common carotid artery blood-flow waveforms in normal human subjects , 1999, Physiological measurement.
[12] H. Goldsmith,et al. Role of blood cell-wall interactions in thrombogenesis and atherogenesis: a microrheological study. , 1984, Biorheology.
[13] I. Marshall,et al. MRI and CFD studies of pulsatile flow in healthy and stenosed carotid bifurcation models. , 2004, Journal of biomechanics.
[14] P. Serruys,et al. The role of shear stress in the generation of rupture-prone vulnerable plaques , 2005, Nature Clinical Practice Cardiovascular Medicine.
[15] D. Ku,et al. Pulsatile Flow and Atherosclerosis in the Human Carotid Bifurcation: Positive Correlation between Plaque Location and Low and Oscillating Shear Stress , 1985, Arteriosclerosis.
[16] A. Tannenbaum,et al. Choice of in vivo versus idealized velocity boundary conditions influences physiologically relevant flow patterns in a subject-specific simulation of flow in the human carotid bifurcation. , 2009, Journal of biomechanical engineering.
[17] J S Milner,et al. Rapid three-dimensional segmentation of the carotid bifurcation from serial MR images. , 2000, Journal of biomechanical engineering.
[18] Christopher P. Cheng,et al. Abdominal aortic hemodynamics in young healthy adults at rest and during lower limb exercise: quantification using image-based computer modeling. , 2006, American journal of physiology. Heart and circulatory physiology.
[19] Charles A. Taylor,et al. A coupled momentum method for modeling blood flow in three-dimensional deformable arteries , 2006 .
[20] B. Rutt,et al. Reconstruction of carotid bifurcation hemodynamics and wall thickness using computational fluid dynamics and MRI , 2002, Magnetic resonance in medicine.
[21] Erling Falk,et al. Mechanical stresses in carotid plaques using MRI-based fluid-structure interaction models. , 2008, Journal of biomechanics.
[22] Chun Yuan,et al. Quantitative Magnetic Resonance Imaging Analysis of Neovasculature Volume in Carotid Atherosclerotic Plaque , 2003, Circulation.
[23] C. Yuan,et al. A negative correlation between human carotid atherosclerotic plaque progression and plaque wall stress: in vivo MRI-based 2D/3D FSI models. , 2008, Journal of Biomechanics.
[24] P. Serruys,et al. The role of shear stress in the destabilization of vulnerable plaques and related therapeutic implications , 2005, Nature Clinical Practice Cardiovascular Medicine.
[25] David A. Steinman,et al. Path-Dependent Hemodynamics of the Stenosed Carotid Bifurcation , 2003, Annals of Biomedical Engineering.
[26] Chun Yuan,et al. In vivo accuracy of multispectral magnetic resonance imaging for identifying lipid-rich necrotic cores and intraplaque hemorrhage in advanced human carotid plaques. , 2002 .
[27] A D Hughes,et al. Blood flow and vessel mechanics in a physiologically realistic model of a human carotid arterial bifurcation. , 2000, Journal of biomechanics.
[28] B. Rutt,et al. Reproducibility of Image-Based Computational Fluid Dynamics Models of the Human Carotid Bifurcation , 2003, Annals of Biomedical Engineering.
[29] Xiangrong Li,et al. Anisotropic adaptive finite element method for modelling blood flow , 2005, Computer methods in biomechanics and biomedical engineering.
[30] M. McConnell,et al. Multicontrast black‐blood MRI of carotid arteries: Comparison between 1.5 and 3 tesla magnetic field strengths , 2006, Journal of magnetic resonance imaging : JMRI.
[31] D. Steinman,et al. On the relative importance of rheology for image-based CFD models of the carotid bifurcation. , 2007, Journal of biomechanical engineering.
[32] Don P. Giddens,et al. Blood Flow in Major Blood Vessels—Modeling and Experiments , 2005, Annals of Biomedical Engineering.
[33] Charles A. Taylor,et al. Outflow boundary conditions for three-dimensional finite element modeling of blood flow and pressure in arteries , 2006 .
[34] Zahi A Fayad,et al. Does shear stress modulate both plaque progression and regression in the thoracic aorta? Human study using serial magnetic resonance imaging. , 2005, Journal of the American College of Cardiology.
[35] Fei Liu,et al. Signal features of the atherosclerotic plaque at 3.0 Tesla versus 1.5 Tesla: Impact on automatic classification , 2008, Journal of magnetic resonance imaging : JMRI.
[36] M. R. Kaazempur-Mofrad,et al. Computational Analysis of the Effects of Exercise on Hemodynamics in the Carotid Bifurcation , 2003, Annals of Biomedical Engineering.
[37] P. Libby. Molecular bases of the acute coronary syndromes. , 1995, Circulation.
[38] A. Hughes,et al. Reproducibility Study of Magnetic Resonance Image-Based Computational Fluid Dynamics Prediction of Carotid Bifurcation Flow , 2003, Annals of Biomedical Engineering.
[39] O. Tricot,et al. Relation between endothelial cell apoptosis and blood flow direction in human atherosclerotic plaques. , 2000, Circulation.
[40] C. Zarins,et al. Carotid Bifurcation Atherosclerosis: Quantitative Correlation of Plaque Localization with Flow Velocity Profiles and Wall Shear Stress , 1983, Circulation research.
[41] B. Björkerud,et al. Contrary effects of lightly and strongly oxidized LDL with potent promotion of growth versus apoptosis on arterial smooth muscle cells, macrophages, and fibroblasts. , 1996, Arteriosclerosis, thrombosis, and vascular biology.
[42] A. Hughes,et al. Analysis of complex flow and the relationship between blood pressure, wall shear stress, and intima-media thickness in the human carotid artery. , 2007, American journal of physiology. Heart and circulatory physiology.
[43] K S Sakariassen,et al. Shear-induced platelet activation and platelet microparticle formation at blood flow conditions as in arteries with a severe stenosis. , 1997, Arteriosclerosis, thrombosis, and vascular biology.
[44] A Noordergraaf,et al. Analog studies of the human systemic arterial tree. , 1969, Journal of biomechanics.
[45] Charles A. Taylor,et al. Efficient anisotropic adaptive discretization of the cardiovascular system , 2006 .