DocumentCode :
3536339
Title :
Magnetic pesonance imaging of electrical conductivity in the human brain
Author :
Sekino, M. ; Inoue, Y. ; Ueno, S.
Author_Institution :
Dept. of Biomed. Eng., Tokyo Univ.
fYear :
2005
fDate :
4-8 April 2005
Firstpage :
623
Lastpage :
623
Abstract :
In this study, conductivity distribution of the human brain were obtained using 1.5 magnetic resonance (MR) imaging system. MR images were obtained with motion-probing gradients (MPGs) applied in three orthogonal directions at 25 equally spaced b factors from 200 to 5000 s/mm2. The b factor was defined as b = gamma2G 2delta2(Delta - delta/3), where gamma is the gyromagnetic ratio (2.7 times 108 rad s-1 T -1), G and delta are the respective intensity and duration of the MPGs, and Delta is the interval between the leading edges of the MPGs. Results show that the signal intensities of MR images are attenuated with an increase in the b factor. An application of the MPG in the superior-inferior direction caused the most rapid signal attenuation. The anisotropy of signal attenuations can be attributed to the fibrous structures of the tissue. The mean conductivity (MC) values of the putamen and the internal capsule were 0.066 S/m and 0.80 S/m, respectively. In the internal capsule, the conductivity exhibited high value in the directions of neuronal fibers. This region had high anisotropy index (AI) in comparison with the putamen. Low-frequency currents are mainly conducted via migrations of ions through extracellular space. The conductivity calculated by the method employed corresponds to the values at very low frequencies because the conductivity model considers only the extracellular current
Keywords :
bioelectric phenomena; biological tissues; biomedical MRI; brain; cellular transport; electrical conductivity; neurophysiology; anisotropy index; electrical conductivity; extracellular space; gyromagnetic ratio; human brain; internal capsule; ion migration; magnetic resonance imaging; motion-probing gradients; neuronal fibers; putamen; signal attenuation; Anisotropic magnetoresistance; Attenuation; Conductivity; Extracellular; Humans; Magnetic anisotropy; Magnetic resonance; Magnetic resonance imaging; Optical imaging; Perpendicular magnetic anisotropy;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Magnetics Conference, 2005. INTERMAG Asia 2005. Digests of the IEEE International
Conference_Location :
Nagoya
Print_ISBN :
0-7803-9009-1
Type :
conf
DOI :
10.1109/INTMAG.2005.1464052
Filename :
1464052
Link To Document :
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