Magnetic resonance susceptibility contrast induced by capillaries: A numerical comparison of two models

被引:2
作者
Bue F.L. [1 ]
Moiny F. [1 ]
Gillis P. [1 ]
机构
[1] Universite de Mons-Hainaut, Physique Biologique, Faculte de Medecine
关键词
Computer simulations; Magnetic resonance imaging of capillaries; Susceptibility contrast; Vasculature; Venography;
D O I
10.1007/BF02592264
中图分类号
学科分类号
摘要
Monte-Carlo computer simulations have proven to be very powerful tools for the analysis of the magnetization decay induced by susceptibility gradients, as well for contrast agent characterization, as for the BOLD effect allowing fMRI. A recent vasculature model containing capillaries and venules uses homogeneous magnetized cylinders as models for the vessels. This modeling is questioned by comparing results obtained from simulation results based on two different models, one using homogeneous cylinders and another taking into account the existence of red blood cells, treated as homogeneous magnetized spheres. The results show the nonequivalence of both models, with the modeling by cylinders systematically overestimating the transverse relaxation rates, and the difference increasing with the adopted value of the diffusion coefficient. The discrepancy is attributed to the dominating role, regarding relaxation, of the local magnetic field in the immediate vicinity of the capillaries, which results in the suggestion of elaborating a 'mixed modeling': the analytical expressions corresponding to the homogeneous cylinder model could be used except when the spin packets are wandering in the immediate vicinity of the capillaries, where accounting for the existence of individual red blood cells (whose motion may be neglected) seems unavoidable.
引用
收藏
页码:39 / 44
页数:5
相关论文
共 35 条
[1]  
Muller RN(1991)Transverse relaxivity of particulate MRI contrast media: from theories to experiments Magn Reson Med 22 178-182
[2]  
Gillis P(1993)MR contrast due to microscopically heterogeneous magnetic susceptibility: numerical simulations and applications to cerebral physiology Magn Reson Med 17 336-347
[3]  
Moiny F(1995)MR contrast due to intravascular magnetic susceptibility perturabations Magn Reson Med 34 555-566
[4]  
Roch A(1995)Proton transverse nuclear magnetic relaxation in oxidized blood: a numerical approach Magn Reson Med 33 93-100
[5]  
Fisel CR(1962)NMR-relaxation mechanisms of J Chem Phys 37 307-320
[6]  
Ackerman JL(1963)O in aqueous solutions of paramagnetic cations and the lifetime of water molecules in the first coordination sphere J Chem Phys 39 366-370
[7]  
Buxton RB(1987)Nuclear magnetic resonance study of the protolysis of trimethylammonium ion in aqueous solution—order of reaction with respect to solvent Magn Reson Med 5 323-345
[8]  
Garrido L(1988)Transverse relaxation of solvent protons induced by magnetized spheres: application to ferritin, erythrocytes, and magnetite J Magn Reson 78 41-55
[9]  
Belliveau JW(1992)Studies of diffusion in random fields produced by variations in susceptibility Magn Reson Med 27 368-374
[10]  
Rosen BR(1961)T1 and T2 of ferritin at different field strengths: effect on MRI Phys Rev 121 1379-1382