TY - JOUR
T1 - Current-induced alternating reversed dual-echo-steady-state for joint estimation of tissue relaxation and electrical properties
AU - Lee, Hyunyeol
AU - Sohn, Chul Ho
AU - Park, Jaeseok
N1 - Publisher Copyright:
© 2016 International Society for Magnetic Resonance in Medicine
PY - 2017/7
Y1 - 2017/7
N2 - Purpose: To develop a current-induced, alternating reversed dual-echo-steady-state-based magnetic resonance electrical impedance tomography for joint estimation of tissue relaxation and electrical properties. Methods: The proposed method reverses the readout gradient configuration of conventional, in which steady-state-free-precession (SSFP)-ECHO is produced earlier than SSFP-free-induction-decay (FID) while alternating current pulses are applied in between the two SSFPs to secure high sensitivity of SSFP-FID to injection current. Additionally, alternating reversed dual-echo-steady-state signals are modulated by employing variable flip angles over two orthogonal injections of current pulses. Ratiometric signal models are analytically constructed, from which T1, T2, and current-induced Bz are jointly estimated by solving a nonlinear inverse problem for conductivity reconstruction. Numerical simulations and experimental studies are performed to investigate the feasibility of the proposed method in estimating relaxation parameters and conductivity. Results: The proposed method, if compared with conventional magnetic resonance electrical impedance tomography, enables rapid data acquisition and simultaneous estimation of T1, T2, and current-induced Bz, yielding a comparable level of signal-to-noise ratio in the parameter estimates while retaining a relative conductivity contrast. Conclusion: We successfully demonstrated the feasibility of the proposed method in jointly estimating tissue relaxation parameters as well as conductivity distributions. It can be a promising, rapid imaging strategy for quantitative conductivity estimation. Magn Reson Med 78:107–120, 2017.
AB - Purpose: To develop a current-induced, alternating reversed dual-echo-steady-state-based magnetic resonance electrical impedance tomography for joint estimation of tissue relaxation and electrical properties. Methods: The proposed method reverses the readout gradient configuration of conventional, in which steady-state-free-precession (SSFP)-ECHO is produced earlier than SSFP-free-induction-decay (FID) while alternating current pulses are applied in between the two SSFPs to secure high sensitivity of SSFP-FID to injection current. Additionally, alternating reversed dual-echo-steady-state signals are modulated by employing variable flip angles over two orthogonal injections of current pulses. Ratiometric signal models are analytically constructed, from which T1, T2, and current-induced Bz are jointly estimated by solving a nonlinear inverse problem for conductivity reconstruction. Numerical simulations and experimental studies are performed to investigate the feasibility of the proposed method in estimating relaxation parameters and conductivity. Results: The proposed method, if compared with conventional magnetic resonance electrical impedance tomography, enables rapid data acquisition and simultaneous estimation of T1, T2, and current-induced Bz, yielding a comparable level of signal-to-noise ratio in the parameter estimates while retaining a relative conductivity contrast. Conclusion: We successfully demonstrated the feasibility of the proposed method in jointly estimating tissue relaxation parameters as well as conductivity distributions. It can be a promising, rapid imaging strategy for quantitative conductivity estimation. Magn Reson Med 78:107–120, 2017.
KW - alternating steady-state-free-precession
KW - conductivity
KW - dual-echo-steady-state
KW - magnetic resonance imaging
KW - relaxation
UR - http://www.scopus.com/inward/record.url?scp=84982946441&partnerID=8YFLogxK
U2 - 10.1002/mrm.26350
DO - 10.1002/mrm.26350
M3 - Article
C2 - 27489196
AN - SCOPUS:84982946441
SN - 0740-3194
VL - 78
SP - 107
EP - 120
JO - Magnetic Resonance in Medicine
JF - Magnetic Resonance in Medicine
IS - 1
ER -