Simultaneous acoustic radiation force imaging and MR thermometry based on a coherent echo-shifted sequence.
Authors: Qiao Y, Zou C, Cheng C, Tie C, Wan Q, Peng H, Liang D, Liu X, Zheng H
Simultaneous magnetic resonance (MR) acoustic radiation force imaging (ARFI) and MR thermometry (MRT) (STARFI) based on coherent echo-shifted (cES) sequence was proposed and comprehensively compared to radiofrequency (RF)-spoiled gradient echo (spGRE) STARFI. Through use of delicately designed gradients, a collection of echoes was delayed by one repetition time (TR) cycle. The crusher gradient after readout (RO) was used as the displacement encoding gradient (DEG). The sequence was intrinsically sensitive to temperature. High-intensity focused ultrasound (HIFU) pulses were interleaved ON/OFF in successive TRs to separate the phase changes induced by displacement due to acoustic radiation force (ARF) impulses and temperature. Bloch simulation was performed to study the phase sensitivity to displacement of the proposed cES STARFI and spGRE STARFI. The proposed cES sequence was evaluated and compared to spGRE STARFI in <i>ex vivo</i> porcine muscle and <i>ex vivo</i> porcine brain. The minimally achievable TR of cES STARFI was shorter than that of spGRE STARFI, indicating that the cES sequence was more time efficient. It was verified through Bloch simulation and <i>ex vivo</i> experiments that the phase sensitivity to displacement of cES STARFI was higher than that of spGRE STARFI. The optimal trigger delays of cES STARFI and spGRE STARFI in <i>ex vivo</i> porcine muscle were <i>t<sub>offset</sub></i> =-2 and -1 ms, respectively. The displacement-induced phase change to acoustic pressure slopes of cES STARFI were 0.079, 0.079, and 0.047 rad/Mpa across the three muscle samples, while the slopes of spGRE STARFI were only 0.047, 0.052, and 0.027 rad/Mpa. The maximum temperature difference between cES STARFI and spGRE STARFI was 1.1 °C. In <i>ex vivo</i> porcine brain, both the displacement-induced phase-to-noise ratio (PNRd) and the temperature uncertainty of cES STARFI were better than those of spGRE STARFI (P<0.05). The temperature and displacement-induced phase change maps of cES STARFI and spGRE STARFI during HIFU treatment were in good accordance in time and spatial location. The cES STARFI sequence can provide simultaneous MR-ARFI and temperature measurements during pulsed HIFU applications. Though the exact displacement cannot be quantified directly, the sequence showed increased phase sensitivity compared with the spGRE sequence and provided efficient visualization of the focal spot. cES STARFI could therefore be a desirable alternative to spGRE STARFI in practical applications.
Introduction
Purpose
Thermal ablation
Study Objective
To propose and evaluate a coherent echo-shifted (cES) STARFI sequence for simultaneous MR acoustic radiation force imaging and MR thermometry and compare its performance to RF‑spoiled gradient‑echo (spGRE) STARFI.
Animal model / Human subject
Porcine (pig, Sus scrofa), strain not specified, age not specified, sex not specified; ex vivo muscle and brain samples
MRI or image guidance method
MRI guidance using MR-ARFI and MR thermometry (STARFI: cES STARFI and spGRE STARFI)
Cargo name and characteristics
High-intensity focused ultrasound (HIFU) pulses — acoustic energy used to induce tissue displacement via acoustic radiation force and heating for MR-ARFI and thermometry
Outcomes and Safety
Summary of Outcomes
The coherent echo-shifted (cES) STARFI sequence produced higher phase sensitivity to acoustic radiation force, better displacement-induced phase-to-noise ratio and lower temperature uncertainty than spGRE STARFI, with shorter achievable TR and consistent MR-ARFI and thermometry maps in ex vivo porcine muscle and brain. Successful HIFU parameters included pulsed HIFU with interleaved ON/OFF pulses and optimal trigger delays of t_offset = -2 ms for cES STARFI (versus -1 ms for spGRE); measured displacement-to-pressure slopes for cES were 0.079, 0.079 and 0.047 rad/MPa across three muscle samples (compared with 0.047, 0.052 and 0.027 rad/MPa for spGRE) and a maximum temperature difference between sequences of 1.1 °C.
Safety-related matter
No safety concerns or adverse effects are mentioned in the paper.
Brain Region
Ultrasound Parameters
FUS Mode
pulsed
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
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