DocumentCode :
762022
Title :
The electric field induced in the brain by magnetic stimulation: a 3-D finite-element analysis of the effect of tissue heterogeneity and anisotropy
Author :
Miranda, Pedro C. ; Hallett, Mark ; Basser, Peter J.
Author_Institution :
Inst. of Biophys. & Biomed. Eng., Lisbon Univ., Portugal
Volume :
50
Issue :
9
fYear :
2003
Firstpage :
1074
Lastpage :
1085
Abstract :
We investigate the effect of tissue heterogeneity and anisotropy on the electric field and current density distribution induced in the brain during magnetic stimulation. Validation of the finite-element (FE) calculations in a homogeneous isotropic sphere showed that the magnitude of the total electric field can be calculated to within an error of approximately 5% in the region of interest, even in the presence of a significant surface charge contribution. We used a high conductivity inclusion within a sphere of lower conductivity to simulate a lesion due to an infarct. Its effect is to increase the electric field induced in the surrounding low conductivity region. This boost is greatest in the vicinity of interfaces that lie perpendicular to the current flow. For physiological values of the conductivity distribution, it can reach a factor of 1.6 and extend many millimeters from the interface. We also show that anisotropy can significantly alter the electric field and current density distributions. Either heterogeneity or anisotropy can introduce a radial electric field component, not present in a homogeneous isotropic conductor. Heterogeneity and anisotropy are predicted to significantly affect the distribution of the electric field induced in the brain. It is, therefore, expected that anatomically faithful FE models of individual brains which incorporate conductivity tensor data derived from diffusion tensor measurements, will provide a better understanding of the location of possible stimulation sites in the brain.
Keywords :
biological effects of fields; biomagnetism; brain models; current density; finite element analysis; magnetic field effects; tensors; 3-D finite-element analysis; anisotropic media; current density distribution; finite-element calculations validation; homogeneous isotropic conductor; homogeneous isotropic sphere; lesion simulation; significant surface charge contribution; tissue anisotropy; tissue heterogeneity; Anisotropic magnetoresistance; Conductivity; Conductors; Current density; Finite element methods; Iron; Lesions; Magnetic analysis; Magnetic stimulation; Tensile stress; Anisotropy; Brain; Brain Neoplasms; Computer Simulation; Electric Conductivity; Electromagnetic Fields; Finite Element Analysis; Humans; Magnetics; Models, Neurological; Radiometry; Reproducibility of Results; Sensitivity and Specificity; Transcutaneous Electric Nerve Stimulation;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2003.816079
Filename :
1220214
Link To Document :
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