Magnetic Resonance Electrical Impedance Tomography
- PMID: 36306098
- DOI: 10.1007/978-3-031-03873-0_7
Magnetic Resonance Electrical Impedance Tomography
Abstract
Magnetic Resonance Electrical Impedance Tomography (MREIT) is a high-resolution bioimpedance imaging technique that has developed over a period beginning in the early 1990s to measure low-frequency (<1 kHz) tissue electrical properties. Low-frequency electrical properties are particularly important because they provide valuable information on cell structures and ionic composition of tissues, which may be very useful for diagnostic purposes. MREIT uses one component of the magnetic flux density data induced due to an exogenous-current administration, measured using an MRI machine, to reconstruct isotropic or anisotropic electrical property distributions. The MREIT technique typically requires two linearly independent current administrations to reconstruct conductivity uniquely. Since its invention, researchers have explored its potential for measuring electrical conductivity in regions such as the brain and muscle tissue. It has also been investigated in disease models, for example, cerebral ischemia and early tumor detection. In this chapter, we aim to provide a solid foundation of the different MREIT image reconstruction algorithms, including both isotropic and anisotropic conductivity reconstruction approaches. We will also explore the newly developed diffusion tensor magnetic resonance electrical impedance tomography (DT-MREIT) method, a practical method for anisotropic tissue property imaging, at the end of the chapter.
© 2022. Springer Nature Switzerland AG.
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References
-
- P.J. Basser, J. Mattiello, D. LeBihan, MR diffusion tensor spectroscopy and imaging. Biophys. J. 66, 256–67 (1994)
-
- O. Brigul, Y.Z. Ider, Use of the magnetic field generated by the internal distribution of injected currents for electrical impedance tomography, in Proceedings of the 9th International Conference on Electrical Bio-Impedance (1995), pp. 418–419
-
- O. Brigul, Y.Z. Ider, Electrical impedance tomography using the magnetic field generated by injected currents, in Proceedings of the 18th Annual International Conference on IEEE Engineering in Medicine and Biology Society (IEEE EMBC, 1996), pp. 784–785
-
- O. Birgul, B.M. Eyüboğlu, Y.Z. Ider, Current constrained voltage scaled reconstruction (CCVSR) algorithm for MR-EIT and its performance with different probing current patterns. Phys. Med. Biol. 6, 215–225 (1998)
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