Real-time monitoring of tissue displacement and temperature changes during MR-guided high intensity focused ultrasound.
Authors: Bour P, Marquet F, Ozenne V, Toupin S, Dumont E, Aubry JF, Lepetit-Coiffe M, Quesson B
The therapy endpoint most commonly used in MR-guided high intensity focused ultrasound is the thermal dose. Although namely correlated with nonviable tissue, it does not account for changes in mechanical properties of tissue during ablation. This study presents a new acquisition sequence for multislice, subsecond and simultaneous imaging of tissue temperature and displacement during ablation. A single-shot echo planar imaging sequence was implemented using a pair of motion-encoding gradients, with alternated polarities. A first ultrasound pulse was synchronized on the second lobe of the motion-encoding gradients and followed by continuous sonication to induce a local temperature increase in ex vivo muscle and in vivo on pig liver. Lastly, the method was evaluated in the brain of two volunteers to assess method's precision. For thermal doses higher than the lethal threshold, displacement amplitude was reduced by 21% and 28% at the focal point in muscle and liver, respectively. Displacement value remained nearly constant for nonlethal thermal doses values. The mean standard deviation of temperature and displacement in the brain of volunteers remained below 0.8 °C and 2.5 µm. This new fast imaging sequence provides real-time measurement of temperature distribution and displacement at the focus during HIFU ablation. Magn Reson Med 78:1911-1921, 2017. © 2017 International Society for Magnetic Resonance in Medicine.
Introduction
Purpose
Thermal ablation
Study Objective
To develop and demonstrate real-time MRI techniques for monitoring tissue displacement and temperature changes during MR-guided high-intensity focused ultrasound.
MRI or image guidance method
MR-guided
Outcomes and Safety
Summary of Outcomes
Real-time MR monitoring during MR-guided high-intensity focused ultrasound (HIFU) detects and quantifies tissue displacement and temperature increases, enabling tracking of thermal effects during treatment. No specific focused ultrasound parameter variations were reported.
Safety-related matter
No safety-related matters or adverse effects are mentioned in the provided text.
Brain Region
Ultrasound Parameters
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
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