264
Views
0
CrossRef citations to date
0
Altmetric
ORIGINAL ARTICLE

Assessment of Wall Shear Stress in the Common Carotid Artery of Healthy Subjects Using 3.0-Tesla Magnetic Resonance

, , , , &
Pages 442-449 | Published online: 09 Jul 2009

References

  • Ku DN, Giddens DP, Zarins CK, Glagov S. Pulsatile flow and atherosclerosis in the human carotid bifurcation—positive correlation between plaque location and low and oscillating shear stress. Atherosclerosis 1985; 5: 293–302
  • Glagov S, Zarins C, Giddens DP, Ku DN. Haemodynamics and atherosclerosis—insights and perspectives gained from studies of human arteries. Arch Pathol Lab Med 1988; 112: 1018–31
  • Lee RT, Libby P. The unstable atheroma. Arterio Thromb Vasc Biol 1997; 17: 1859–67
  • Richardson PD, Davies MJ, Born R. Influence of plaque configuration and stress distribution on fissuring of coronary atherosclerotic plaques. Lancet 1989; 2: 941–4
  • Nagel TE, Resnick N, Dewey CF, Gimbrone MA. Differential responses of endothelial cells to uniform and disturbed laminar shear stress. J Vasc Surg 1999; 29: 1114–5
  • Ohno M, Gibbons GH, Dzau VJ, Cooke JP. Shear stress elevates endothelial cGMP: role of a potassium channel and G protein coupling. Circulation 1993; 88: 193–7
  • DePoala N, Dewey CF, Davies PF, Gimbrone MA. Vascular endothelium responds to fluid shear stress gradients. Arterio Thromb Vasc Biol 1992; 12: 1254–9
  • Sprague EA, Mohan S, Nerem RM. Shear stress regulation of monocyte/endothelial interactions. J Vasc Surg 1999; 29: 1138–40
  • Moore JE, Jr, Xu C, Glagov S, Zarins CK, Ku DN. Fluid wall shear stress measurements in a model of the human abdominal aorta: oscillatory behavior and relationship to atherosclerosis. Atherosclerosis 1994; 110: 225–40
  • Zhao SZ, Xu XY, Hughes AD, Thom SA, Stanton AV, Ariff B, et al. Blood flow and vessel mechanics in a physiologically realistic model of a human carotid arterial bifurcation. J Biomech 2000; 33: 975–84
  • Demiray H, WeizsBcker HW, Pascale K, Erbay HA. A stress–strain relation for a rat abdominal aorta. J Biomech 1988; 21: 369–74
  • Stepp DW, Nishikawa Y, Chilian WM. Regulation of shear stress in the canine microcirculation. Circulation 1999; 100: 1555–61
  • Masaryk A, Frayne R, Unal O, Krupinski E, Strother CM. In vitro and in vivo comparison of three MR measurement methods for calculating vascular shear stress in the internal carotid artery. Am J Neuroradiol 1999; 20: 237–45
  • Cebral JR, Yim PJ, Löhner R, Soto O, Choyke PL. Blood flow modeling in carotid arteries with computational fluid dynamics and MR imaging. Acad Radiol 2002; 9: 1286–99
  • Zhao SZ, Ariff B, Long Q, Hughesb AD, Thomb SA, Stantonb AV, et al. Inter-individual variations in wall shear stress and mechanical stress distributions at the carotid artery bifurcation of healthy humans. J Biomech 2002; 35: 1367–77
  • Glor FP, Ariff B, Hughes AD, Verdonck PR, Thom SA, Barratt DC, et al. Operator dependence of 3-D ultrasound-based computational fluid dynamics for the carotid bifurcation. IEEE Trans Med Imaging 2005; 24: 451–6
  • Oshinski J, Ku DN, Mukundan S, Loth F, Pettigrew RI. Determination of wall shear stress in the aorta with the use of MR phase velocity mapping. Magn Reson Imag 1995; 5: 640–7
  • Frayne R, Rutt BK. Measurement of fluid-shear rate by Fourier-encoded velocity imaging. Magn Reson Med 1995; 34: 378–87
  • Cheng CP, Parker D, Taylor CA. Quantification of wall shear stress in large blood vessels using Lagrangian interpolation functions with cine phase-contrast magnetic resonance imaging. Ann Biomed Eng 2002; 30: 1020–32
  • Pipe JG. A simple measure of flow disorder and wall shear stress in phase contrast MRI. Magn Reson Med 2003; 49: 543–50
  • Oyre S, Ringgaard S, Kozerke S, Paaske WP, Scheidegger MB, Boesiger P, et al. Quantitation of circumferential subpixel vessel wall position and wall shear stress by multiple sectored three-dimensional paraboloid modeling of velocity encoded cine MR. Magn Reson Med 1998; 40: 645–55
  • Box FM, van der Geest RJ, van der Grond J, van Osch MJ, Zwinderman AH, Palm-Meinders IH, et al. Reproducibility of wall shear stress assessment with the paraboloid method in the internal carotid artery with velocity encoded MRI in healthy young individuals. J Magn Reson Imag 2007; 26: 598–605
  • Oyre S, Paaske WP, Ringgaard S. Automatic accurate non-invasive quantitation of blood flow, cross-sectional vessel area, and wall shear stress by modelling of magnetic resonance velocity data. Eur J Vasc Endovasc Surg 1998; 16: 517–24
  • Theodoros G, Papaioannou CS. Vascular wall shear stress: basic principles and methods. Hellenic J Cardiol 2005; 46: 9–15
  • Nayler GL, Firmin DN, Longmore DB. Blood flow imaging by cine magnetic resonance. J Comput Assist Tomogr 1986; 10: 715–22
  • Wu SP, Ringgaard S, Pedersen EM. Three-dimensional phase contrast velocity mapping acquisition improves wall shear stress estimation in vivo. Magn Reson Imag 2004; 22: 345–51
  • Hoeks AP, Samijo SK, Brands PJ, Reneman RS. Noninvasive determination of shear-rate distribution across the arterial lumen. Hypertension 1995; 26: 26–33
  • Samijo SK, Willigers JM, Barkhuysen R, Kitslaar PJ, Reneman RS, Brands PJ, et al. Wall shear stress in the human common carotid artery as function of age and gender. Cardiovasc Res 1998; 39: 515–22
  • Perktold K, Thurner E, Kenner T. Flow and stress characteristics in rigid walled and compliant carotid artery bifurcation models. Med Biol Eng Comput 1994; 32: 19–26
  • Friedman MH, Bargeron CB, Duncan DD, Hutchins GM, Mark FF. Effects of arterial compliance and non-Newtonian rheology on correlations between intimal thickness and wall shear. J Biomech Eng 1992; 114: 317–20
  • Bogren HG, Buonocore MH, Gu WZ. Carotid and vertebral artery blood flow in left- and right-handed healthy subjects measured with MR velocity mapping. J Magn Reson Imag 1994; 4: 37–42
  • Vanninen RL, Manninen HI, Partanen PL, Vainio PA, Soimakallio S. Carotid artery stenosis: clinical efficacy of MR phase-contrast flow quantification as an adjunct to MR angiography. Radiology 1995; 194: 459–67

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.