Estimation of mouse carotid arterial wall shear stress using high-frequency ultrasound imaging.
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[1] Nirvedh H. Meshram,et al. Adaptive Wall Shear Stress Imaging in Phantoms, Simulations and In Vivo , 2022, IEEE Transactions on Biomedical Engineering.
[2] R. Kelley,et al. Carotid atherosclerotic disease: A systematic review of pathogenesis and management , 2022, Brain circulation.
[3] P. Jakob,et al. 2D Projection Maps of WSS and OSI Reveal Distinct Spatiotemporal Changes in Hemodynamics in the Murine Aorta during Ageing and Atherosclerosis , 2021, Biomedicines.
[4] M. Tang,et al. Contrast Agent-Free Assessment of Blood Flow and Wall Shear Stress in the Rabbit Aorta using Ultrasound Image Velocimetry , 2021, Ultrasound in medicine & biology.
[5] Chih-Chung Huang,et al. Wall shear stress mapping for human femoral artery based on ultrafast ultrasound vector Doppler estimations. , 2021, Medical physics.
[6] P. Jakob,et al. Simultaneous measurements of 3D wall shear stress and pulse wave velocity in the murine aortic arch , 2021, Journal of Cardiovascular Magnetic Resonance.
[7] V. Herold,et al. Wall shear stress analysis using 17.6 Tesla MRI: A longitudinal study in ApoE-/- mice with histological analysis , 2020, PloS one.
[8] H. Liebgott,et al. Translation of Simultaneous Vessel Wall Motion and Vectorial Blood Flow Imaging in Healthy and Diseased Carotids to the Clinic: A Pilot Study , 2020, IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control.
[9] Chih-Chung Huang,et al. 40-MHz High-Frequency Vector Doppler Imaging for Superficial Venous Valve Flow Estimation. , 2020, Medical physics.
[10] Yi Dong,et al. V Flow technology in measurement of wall shear stress of common carotid arteries in healthy adults: Feasibility and normal values. , 2020, Clinical hemorheology and microcirculation.
[11] M. Tang,et al. Determining Haemodynamic Wall Shear Stress in the Rabbit Aorta In Vivo Using Contrast-Enhanced Ultrasound Image Velocimetry , 2020, Annals of Biomedical Engineering.
[12] Li-Chieh Kuo,et al. Evaluation of Hand Tendon Movement by Using High-Frequency Ultrasound Vector Doppler Imaging , 2020, IEEE Transactions on Biomedical Engineering.
[13] P. Jakob,et al. Fast self-navigated wall shear stress measurements in the murine aortic arch using radial 4D-phase contrast cardiovascular magnetic resonance at 17.6 T , 2019, Journal of Cardiovascular Magnetic Resonance.
[14] J. Alsac,et al. Wall Shear Stress Measurement by Ultrafast Vector Flow Imaging for Atherosclerotic Carotid Stenosis , 2019, Ultraschall in der Medizin - European Journal of Ultrasound.
[15] Pei-Yu Chen,et al. In Vivo Visualization of Brain Vasculature in Alzheimer's Disease Mice by High-Frequency Micro-Doppler Imaging , 2019, IEEE Transactions on Biomedical Engineering.
[16] Qifa Zhou,et al. High-Resolution Shear Wave Imaging of the Human Cornea Using a Dual-Element Transducer , 2018, Sensors.
[17] Adrian J. Y. Chee,et al. Time-Resolved Wall Shear Rate Mapping Using High-Frame-Rate Ultrasound Imaging , 2018, IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control.
[18] T. Einarson,et al. Prevalence of cardiovascular disease in type 2 diabetes: a systematic literature review of scientific evidence from across the world in 2007–2017 , 2018, Cardiovascular Diabetology.
[19] T. Ma,et al. Development of an intravascular ultrasound elastography based on a dual-element transducer , 2018, Royal Society Open Science.
[20] Jian Li,et al. DBZ (Danshensu Bingpian Zhi), a Novel Natural Compound Derivative, Attenuates Atherosclerosis in Apolipoprotein E–Deficient Mice , 2017, Journal of the American Heart Association.
[21] Chih-Chung Huang,et al. 40 MHz high‐frequency ultrafast ultrasound imaging , 2017, Medical physics.
[22] Nigel Stallard,et al. The changing face of cardiovascular disease 2000-2012: An analysis of the world health organisation global health estimates data. , 2016, International journal of cardiology.
[23] Jan Vierendeels,et al. Assessment of shear stress related parameters in the carotid bifurcation using mouse-specific FSI simulations. , 2016, Journal of biomechanics.
[24] Abigail Swillens,et al. An Extended Least Squares Method for Aliasing-Resistant Vector Velocity Estimation , 2016, IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control.
[25] Billy Y. S. Yiu,et al. Least-Squares Multi-Angle Doppler Estimators for Plane-Wave Vector Flow Imaging , 2016, IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control.
[26] Chee Hau Leow,et al. Flow Velocity Mapping Using Contrast Enhanced High-Frame-Rate Plane Wave Ultrasound and Image Tracking: Methods and Initial in Vitro and in Vivo Evaluation. , 2015, Ultrasound in medicine & biology.
[27] J. Gunn,et al. Computational fluid dynamics modelling in cardiovascular medicine , 2015, Heart.
[28] D. Bluemke,et al. Evolution of aortic wall thickness and stiffness with atherosclerosis: long-term follow up from the multi-ethnic study of atherosclerosis. , 2015, Hypertension.
[29] Billy Y S Yiu,et al. Vector projectile imaging: time-resolved dynamic visualization of complex flow patterns. , 2014, Ultrasound in medicine & biology.
[30] G. Mensah,et al. 1990-2010 global cardiovascular disease atlas. , 2014, Global heart.
[31] C. Weiller,et al. Wall shear stress distribution at the carotid bifurcation: influence of eversion carotid endarterectomy , 2013, European Radiology.
[32] J. Frostegård. Immunity, atherosclerosis and cardiovascular disease , 2013, BMC Medicine.
[33] David A Steinman,et al. Errors in the estimation of wall shear stress by maximum Doppler velocity. , 2013, Atherosclerosis.
[34] S. Sherwin,et al. Does low and oscillatory wall shear stress correlate spatially with early atherosclerosis? A systematic review , 2013, Cardiovascular research.
[35] S. Madala,et al. Doppler velocity measurements from large and small arteries of mice. , 2011, American journal of physiology. Heart and circulatory physiology.
[36] Chih-Chung Huang,et al. High-frequency attenuation and backscatter measurements of rat blood between 30 and 60 MHz , 2010, Physics in medicine and biology.
[37] Yun Zhang,et al. A causal relationship between shear stress and atherosclerotic lesions in apolipoprotein E knockout mice assessed by ultrasound biomicroscopy. , 2010, American journal of physiology. Heart and circulatory physiology.
[38] Habib Samady,et al. Shear stress and plaque development , 2010, Expert review of cardiovascular therapy.
[39] D H Evans,et al. Colour flow and motion imaging , 2010, Proceedings of the Institution of Mechanical Engineers. Part H, Journal of engineering in medicine.
[40] J. Hennig,et al. Quantitative 2D and 3D phase contrast MRI: Optimized analysis of blood flow and vessel wall parameters , 2008, Magnetic resonance in medicine.
[41] K. Sueishi,et al. Early atherosclerosis in humans: role of diffuse intimal thickening and extracellular matrix proteoglycans. , 2008, Cardiovascular research.
[42] Shyh-Hau Wang,et al. The Effect of Kinetic Properties on Statistical Variations of Ultrasound Signals Backscattered from Flowing Blood , 2007, Ultrasound in medicine & biology.
[43] Shyh-Hau Wang,et al. Detection of coagulating blood under steady flow by statistical analysis of backscattered signals , 2007, IEEE Transactions on Ultrasonics, Ferroelectrics and Frequency Control.
[44] J. Frostegård,et al. SLE, atherosclerosis and cardiovascular disease , 2005, Journal of internal medicine.
[45] D. Hurter,et al. A short overview of MRI artefacts , 2004 .
[46] Ian Marshall,et al. MRI measurement of time‐resolved wall shear stress vectors in a carotid bifurcation model, and comparison with CFD predictions , 2003, Journal of magnetic resonance imaging : JMRI.
[47] Christopher P. Cheng,et al. Quantification of Wall Shear Stress in Large Blood Vessels Using Lagrangian Interpolation Functions with Cine Phase-Contrast Magnetic Resonance Imaging , 2002, Annals of Biomedical Engineering.
[48] R S Reneman,et al. Wall shear stress in the human common carotid artery as function of age and gender. , 1998, Cardiovascular research.
[49] T. Karino,et al. Flow patterns and spatial distribution of atherosclerotic lesions in human coronary arteries. , 1990, Circulation research.
[50] C. Kasai,et al. Real-Time Two-Dimensional Blood Flow Imaging Using an Autocorrelation Technique , 1985, IEEE Transactions on Sonics and Ultrasonics.
[51] C. Zarins,et al. Carotid Bifurcation Atherosclerosis: Quantitative Correlation of Plaque Localization with Flow Velocity Profiles and Wall Shear Stress , 1983, Circulation research.
[52] Chee Hau Leow,et al. Spatio-Temporal Flow and Wall Shear Stress Mapping Based on Incoherent Ensemble-Correlation of Ultrafast Contrast Enhanced Ultrasound Images. , 2018, Ultrasound in medicine & biology.
[53] D. Birchall,et al. Analysis of haemodynamic factors involved in carotid atherosclerosis using computational fluid dynamics. , 2009, The British journal of radiology.
[54] J. Díez. Arterial stiffness and extracellular matrix. , 2007, Advances in cardiology.
[55] S. B. Park,et al. A new aliasing extension method for ultrasonic 2-dimensional pulsed Doppler systems. , 1989, Ultrasonic imaging.