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Integrated ultrasound and magnetic resonance imaging for simultaneous temperature and cavitation monitoring during focused ultrasound therapies.

Authors: Arvanitis CD, McDannold N

Ultrasound can be used to noninvasively produce different bioeffects via viscous heating, acoustic cavitation, or their combination, and these effects can be exploited to develop a wide range of therapies for cancer and other disorders. In order to accurately localize and control these different effects, imaging methods are desired that can map both temperature changes and cavitation activity. To address these needs, the authors integrated an ultrasound imaging array into an MRI-guided focused ultrasound (MRgFUS) system to simultaneously visualize thermal and mechanical effects via passive acoustic mapping (PAM) and MR temperature imaging (MRTI), respectively. The system was tested with an MRgFUS system developed for transcranial sonication for brain tumor ablation in experiments with a tissue mimicking phantom and a phantom-filled ex vivo macaque skull. In experiments on cavitation-enhanced heating, 10 s continuous wave sonications were applied at increasing power levels (30-110 W) until broadband acoustic emissions (a signature for inertial cavitation) were evident. The presence or lack of signal in the PAM, as well as its magnitude and location, were compared to the focal heating in the MRTI. Additional experiments compared PAM with standard B-mode ultrasound imaging and tested the feasibility of the system to map cavitation activity produced during low-power (5 W) burst sonications in a channel filled with a microbubble ultrasound contrast agent. When inertial cavitation was evident, localized activity was present in PAM and a marked increase in heating was observed in MRTI. The location of the cavitation activity and heating agreed on average after registration of the two imaging modalities; the distance between the maximum cavitation activity and focal heating was -3.4 ± 2.1 mm and -0.1 ± 3.3 mm in the axial and transverse ultrasound array directions, respectively. Distortions and other MRI issues introduced small uncertainties in the PAM∕MRTI registration. Although there was substantial variation, a nonlinear relationship between the average intensity of the cavitation maps, which was relatively constant during sonication, and the peak temperature rise was evident. A fit to the data to an exponential had a correlation coefficient (R(2)) of 0.62. The system was also found to be capable of visualizing cavitation activity with B-mode imaging and of passively mapping cavitation activity transcranially during cavitation-enhanced heating and during low-power sonication with an ultrasound contrast agent. The authors have demonstrated the feasibility of integrating an ultrasound imaging array into an MRgFUS system to simultaneously map localized cavitation activity and temperature. The authors anticipate that this integrated approach can be utilized to develop controllers for cavitation-enhanced ablation and facilitate the optimization and development of this and other ultrasound therapies. The integrated system may also provide a useful tool to study the bioeffects of acoustic cavitation.

Introduction

Purpose Thermal ablation
Study Objective To integrate an ultrasound imaging array into an MRI-guided focused ultrasound system to simultaneously map cavitation activity (via passive acoustic mapping) and temperature changes (via MR thermometry).
Animal model / Human subject Primate, Macaque (ex vivo skull); strain: None; age: None; sex: None
Disease model brain tumor
MRI or image guidance method MRI-guided (MRgFUS) using MR temperature imaging (MRTI) with an integrated ultrasound imaging array for passive acoustic mapping (PAM)

Outcomes and Safety

Summary of Outcomes Inertial cavitation during MR-guided focused ultrasound produced localized cavitation activity on passive acoustic mapping that corresponded to marked, localized increases in temperature on MR thermometry (cavitation and heating locations agreed within ~3 mm and cavitation intensity correlated nonlinearly with peak temperature rise, R^2=0.62). Successful parameters included 10 s continuous-wave sonications at 30–110 W that induced inertial cavitation and cavitation-enhanced heating, and low-power (5 W) burst sonications with microbubble contrast agent that produced detectable transcranial cavitation activity by PAM and B-mode imaging.
Duration of biological effect 10 s
Safety-related matter No adverse effects or safety issues were reported; the paper describes heating associated with inertial cavitation and small MRI/PAM registration uncertainties but does not report any harms.

Brain Region

Visualization unavailable

Ultrasound Parameters

FUS Mode continuous
Pulse duration 10 s
Duration of a single FUS session 10 s
Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency Multiple

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