Author/Authors :
Ghazikhanlou-sani، K نويسنده PhD student of Medical Physics, Tarbiat Modares University, Medical Physics Department, Tehran, Iran , , Firoozabadi، S M P نويسنده Professor of Biomedical Engineering, Tarbiat Modares University, Medical Physics Department, Tehran, Iran , , Agha-ghazvini ، L نويسنده Assistant Professor of Radiology, Department of Radiology, School of Medicine and Shariati Hospital, Tehran University of Medical Sciences, Tehran, Iran , , Mahmoodzadeh، H نويسنده Assistant Professor of General Surgery, Imam Khomeini Hospital, Tehran University of Medical Sciences, Tehran, Iran ,
Abstract :
Introduction: There is many ways to assessing the electrical conductivity anisotropy of a tumor. Applying the values of tissue electrical conductivity anisotropy
is crucial in numerical modeling of the electric and thermal feld distribution in electroporation treatments. This study aims to calculate the tissues electrical conductivity
anisotropy in patients with sarcoma tumors using diffusion tensor imaging technique.
Materials and Method: A total of 3 subjects were involved in this study. All
of patients had clinically apparent sarcoma tumors at the extremities. The T1, T2 and
DTI images were performed using a 3-Tesla multi-coil, multi-channel MRI system.
The fractional anisotropy (FA) maps were performed using the FSL (FMRI software
library) software regarding the DTI images. The 3D matrix of the FA maps of each area
(tumor, normal soft tissue and bone/s) was reconstructed and the anisotropy matrix
was calculated regarding to the FA values.
Result: The mean FA values in direction of main axis in sarcoma tumors were
ranged between 0.475–0.690. With assumption of isotropy of the electrical conductivity, the FA value of electrical conductivity at each X, Y and Z coordinate axes would
be equal to 0.577. The gathered results showed that there is a mean error band of 20%
in electrical conductivity, if the electrical conductivity anisotropy not concluded at the
calculations. The comparison of FA values showed that there is a signifcant statistical
difference between the mean FA value of tumor and normal soft tissues (P < 0.05).
Conclusion: DTI is a feasible technique for the assessment of electrical conductivity anisotropy of tissues. It is crucial to quantify the electrical conductivity anisotropy
data of tissues for numerical modeling of electroporation treatments.